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Liu J, Aoki M, Illa I, Wu C, Fardeau M, Angelini C, Serrano C, Urtizberea JA, Hentati F, Hamida MB, Bohlega S, Culper EJ, Amato AA, Bossie K, Oeltjen J, Bejaoui K, McKenna-Yasek D, Hosler BA, Schurr E, Arahata K, de Jong PJ, Brown RH. Dysferlin, a novel skeletal muscle gene, is mutated in Miyoshi myopathy and limb girdle muscular dystrophy. Nat Genet 1998; 20:31-6. [PMID: 9731526 DOI: 10.1038/1682] [Citation(s) in RCA: 657] [Impact Index Per Article: 24.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/09/2022]
Abstract
Miyoshi myopathy (MM) is an adult onset, recessive inherited distal muscular dystrophy that we have mapped to human chromosome 2p13. We recently constructed a 3-Mb P1-derived artificial chromosome (PAC) contig spanning the MM candidate region. This clarified the order of genetic markers across the MM locus, provided five new polymorphic markers within it and narrowed the locus to approximately 2 Mb. Five skeletal muscle expressed sequence tags (ESTs) map in this region. We report that one of these is located in a novel, full-length 6.9-kb muscle cDNA, and we designate the corresponding protein 'dysferlin'. We describe nine mutations in the dysferlin gene in nine families; five are predicted to prevent dysferlin expression. Identical mutations in the dysferlin gene can produce more than one myopathy phenotype (MM, limb girdle dystrophy, distal myopathy with anterior tibial onset).
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657 |
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Morishita R, Sugimoto T, Aoki M, Kida I, Tomita N, Moriguchi A, Maeda K, Sawa Y, Kaneda Y, Higaki J, Ogihara T. In vivo transfection of cis element "decoy" against nuclear factor-kappaB binding site prevents myocardial infarction. Nat Med 1997; 3:894-9. [PMID: 9256281 DOI: 10.1038/nm0897-894] [Citation(s) in RCA: 454] [Impact Index Per Article: 16.2] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 02/05/2023]
Abstract
The transcriptional factor nuclear factor-kappaB (NFkappaB) plays a pivotal role in the coordinated transactivation of cytokine and adhesion molecule genes that might be involved in myocardial damage after ischemia and reperfusion. Therefore, we hypothesized that synthetic double-stranded DNA with high affinity for NFkappaB could be introduced in vivo as "decoy" cis elements to bind the transcriptional factor and to block the activation of genes mediating myocardial infarction, thus providing effective therapy for myocardial infarction. Treatment before and after infarction by transfection of NFkappaB decoy, but not scrambled decoy, oligodeoxynucleotides before coronary artery occlusion or immediately after reperfusion had a significant inhibitory effect on the area of infarction. Here, we report the first successful in vivo transfer of NFkappaB decoy oligodeoxynucleotides to reduce the extent of myocardial infarction following reperfusion, providing a new therapeutic strategy for myocardial infarction.
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28 |
454 |
3
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Sato K, Aoki M, Noyori R. A "Green" route to adipic acid: direct oxidation of cyclohexenes with 30 percent hydrogen peroxide. Science 1998; 281:1646-7. [PMID: 9733504 DOI: 10.1126/science.281.5383.1646] [Citation(s) in RCA: 443] [Impact Index Per Article: 16.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/02/2022]
Abstract
Currently, the industrial production of adipic acid uses nitric acid oxidation of cyclohexanol or a cyclohexanol/cyclohexanone mixture. The nitrous oxide emission from this process measurably contributes to global warming and ozone depletion. Therefore, the development of an adipic acid production process that is less damaging to the environment is an important subject in chemical research. Cyclohexene can now be oxidized directly to colorless crystalline adipic acid with aqueous 30 percent hydrogen peroxide under organic solvent- and halide-free conditions, which could provide an ideal solution to this serious problem.
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443 |
4
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Jiang BH, Zheng JZ, Aoki M, Vogt PK. Phosphatidylinositol 3-kinase signaling mediates angiogenesis and expression of vascular endothelial growth factor in endothelial cells. Proc Natl Acad Sci U S A 2000; 97:1749-53. [PMID: 10677529 PMCID: PMC26507 DOI: 10.1073/pnas.040560897] [Citation(s) in RCA: 419] [Impact Index Per Article: 16.8] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Accepted: 12/21/1999] [Indexed: 02/08/2023] Open
Abstract
Phosphatidylinositol 3-kinase (PI 3-kinase) is a signaling molecule that controls numerous cellular properties and activities. The oncogene v-p3k is a homolog of the gene coding for the catalytic subunit of PI 3-kinase, p110alpha. P3k induces transformation of cells in culture, formation of hemangiosarcomas in young chickens, and myogenic differentiation in myoblasts. Here, we describe a role of PI 3-kinase in angiogenesis. Overexpression of the v-P3k protein or of cellular PI 3-kinase equipped with a myristylation signal, Myr-P3k, can induce angiogenesis in the chorioallantoic membrane (CAM) of the chicken embryo. This process is characterized by extensive sprouting of new blood vessels and enlargement of preexisting vessels. Overexpression of the myristylated form of the PI 3-kinase target Akt, Myr-Akt, also induces angiogenesis. Overexpression of the tumor suppressor PTEN or of dominant-negative constructs of PI 3-kinase inhibits angiogenesis in the yolk sac of chicken embryos, suggesting that PI 3-kinase and Akt signaling is required for normal embryonal angiogenesis. The levels of mRNA for vascular endothelial growth factor (VEGF) are elevated in cells expressing activated PI 3-kinase or Myr-Akt. VEGF mRNA levels are also increased by insulin treatment through the PI 3-kinase-dependent pathway. VEGF mRNA levels are decreased in cells treated with the PI 3-kinase inhibitor LY294002 and restored by overexpression of v-P3k or Myr-Akt. Overexpression of VEGF by the RCAS vector induces angiogenesis in chicken embryos. These results suggest that PI 3-kinase plays an important role in angiogenesis and regulates VEGF expression.
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419 |
5
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Asano N, Aoki M, Suzuki S, Miyatake K, Uchida H, Watanabe M. Aliphatic/Aromatic Polyimide Ionomers as a Proton Conductive Membrane for Fuel Cell Applications. J Am Chem Soc 2006; 128:1762-9. [PMID: 16448153 DOI: 10.1021/ja0571491] [Citation(s) in RCA: 381] [Impact Index Per Article: 20.1] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/29/2022]
Abstract
To produce a proton conductive and durable polymer electrolyte membrane for fuel cell applications, a series of sulfonated polyimide ionomers containing aliphatic groups both in the main and in the side chains have been synthesized. The title polyimide ionomers 1 with the ion exchange capacity of 1.78-2.33 mequiv/g were obtained by a typical polycondensation reaction as transparent, ductile, and flexible membranes. The proton conductivity of 1 was slightly lower than that of the perfluorinated ionomer (Nafion) below 100 degrees C, but comparable at higher temperature and 100% RH. The highest conductivity of 0.18 S cm(-)(1) was obtained for 1 at 140 degrees C. Ionomer 1 with high IEC and branched chemical structure exhibited improved proton conducting behavior without sacrificing membrane stability. Microscopic analyses revealed that smaller (<5 nm) and well-dispersed hydrophilic domains contribute to better proton conducting properties. Hydrogen and oxygen permeability of 1 was 1-2 orders of magnitude lower than that of Nafion under both dry and wet conditions. Fuel cell was fabricated with 1 membrane and operated at 80 degrees C and 0.2 A/cm(2) supplying H(2) and air both at 60% or 90% RH. Ionomer 1 membrane showed comparable performance to Nafion and was durable for 5000 h without distinct degradation.
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381 |
6
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Chang HW, Aoki M, Fruman D, Auger KR, Bellacosa A, Tsichlis PN, Cantley LC, Roberts TM, Vogt PK. Transformation of chicken cells by the gene encoding the catalytic subunit of PI 3-kinase. Science 1997; 276:1848-50. [PMID: 9188528 DOI: 10.1126/science.276.5320.1848] [Citation(s) in RCA: 342] [Impact Index Per Article: 12.2] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 02/04/2023]
Abstract
The avian sarcoma virus 16 (ASV 16) is a retrovirus that induces hemangiosarcomas in chickens. Analysis of the ASV 16 genome revealed that it encodes an oncogene that is derived from the cellular gene for the catalytic subunit of phosphoinositide 3-kinase (PI 3-kinase). The gene is referred to as v-p3k, and like its cellular counterpart c-p3k, it is a potent transforming gene in cultured chicken embryo fibroblasts (CEFs). The products of the viral and cellular p3k genes have PI 3-kinase activity. CEFs transformed with either gene showed elevated levels of phosphatidylinositol 3,4-bisphosphate and phosphatidylinositol 3,4,5-trisphosphate and activation of Akt kinase.
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342 |
7
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Taniyama Y, Tachibana K, Hiraoka K, Aoki M, Yamamoto S, Matsumoto K, Nakamura T, Ogihara T, Kaneda Y, Morishita R. Development of safe and efficient novel nonviral gene transfer using ultrasound: enhancement of transfection efficiency of naked plasmid DNA in skeletal muscle. Gene Ther 2002; 9:372-80. [PMID: 11960313 DOI: 10.1038/sj.gt.3301678] [Citation(s) in RCA: 336] [Impact Index Per Article: 14.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/26/2001] [Accepted: 12/18/2001] [Indexed: 01/02/2023]
Abstract
Although clinical trials of stimulation of angiogenesis by transfection of angiogenic growth factors using naked plasmid DNA or adenoviral vector have been successful, there are still unresolved problems for human gene therapy such as low transfection efficiency and safety. From this viewpoint, it is necessary to develop safe and efficient novel nonviral gene transfer methods. As therapeutic ultrasound induces cell membrane permeabilization, ultrasound irradiation might increase the transfection efficiency of naked plasmid DNA into skeletal muscle. Thus, we examined the transfection efficiency of naked plasmid DNA using ultrasound irradiation with echo contrast microbubble (Optison) in vitro and in vivo experiments. First, we examined the feasibility of ultrasound-mediated transfection of naked plasmid DNA into skeletal muscle cells. Luciferase plasmid mixed with or without Optison was transfected into cultured human skeletal muscle cells using ultrasound (1 MHz; 0.4 W(2)) for 30 s. Interestingly, luciferase activity was markedly increased in cells treated with Optison, while little luciferase activity could be detected without Optison (P < 0.01). Electron microscopy demonstrated the transient formation of holes (less than 5 microM) in the cell surface, which could possibly explain the rapid migration of the transgene into the cells. Next, we studied the in vivo transfection efficiency of naked plasmid DNA using ultrasound with Optison into skeletal muscle. Two days after transfection, luciferase activity in skeletal muscle transfected with Optison using ultrasound was significantly increased about 10-fold as compared with plasmid alone. Successful transfection was also confirmed by beta-galactosidase staining. Finally, we examined the feasibility of therapeutic angiogenesis using naked hepatocyte growth factor (HGF) plasmid in a rabbit ischemia model using the ultrasound-Optison method. Five weeks after transfection, the angiographic score and the number of capillary density in rabbits transfected with Optison using ultrasound was significantly increased as compared with HGF plasmid alone (P < 0.01), accompanied by a significant increase in blood flow and blood pressure ratio (P < 0.01). Overall, the ultrasound transfection method with Optison enhanced the transfection efficiency of naked plasmid DNA in vivo as well as in vitro. Transfection of HGF plasmid by the ultrasound-Optison method could be useful for safe clinical gene therapy to treat peripheral arterial disease without a viral vector system.
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Furusawa Y, Fukutsu K, Aoki M, Itsukaichi H, Eguchi-Kasai K, Ohara H, Yatagai F, Kanai T, Ando K. Inactivation of aerobic and hypoxic cells from three different cell lines by accelerated (3)He-, (12)C- and (20)Ne-ion beams. Radiat Res 2000; 154:485-96. [PMID: 11025645 DOI: 10.1667/0033-7587(2000)154[0485:ioaahc]2.0.co;2] [Citation(s) in RCA: 330] [Impact Index Per Article: 13.2] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/03/2022]
Abstract
The LET-RBE spectra for cell killing for cultured mammalian cells exposed to accelerated heavy ions were investigated to design a spread-out Bragg peak beam for cancer therapy at HIMAC, National Institute of Radiological Sciences, Chiba, prior to clinical trials. Cells that originated from a human salivary gland tumor (HSG cells) as well as V79 and T1 cells were exposed to (3)He-, (12)C- and (20)Ne-ion beams with an LET ranging from approximately 20-600 keV/micrometer under both aerobic and hypoxic conditions. Cell survival curves were fitted by equations from the linear-quadratic model and the target model to obtain survival parameters. RBE, OER, alpha and D(0) were analyzed as a function of LET. The RBE increased with LET, reaching a maximum at around 200 keV/micrometer, then decreased with a further increase in LET. Clear splits of the LET-RBE or -OER spectra were found among ion species and/or cell lines. At a given LET, the RBE value for (3)He ions was higher than that for the other ions. The position of the maximum RBE shifts to higher LET values for heavier ions. The OER value was 3 for X rays but started to decrease at an LET of around 50 keV/micrometer, passed below 2 at around 100 keV/micrometer, and then reached a minimum above 300 keV/micrometer, but the values remained greater than 1. The OER was significantly lower for (3)He ions than the others.
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Moreira MC, Barbot C, Tachi N, Kozuka N, Uchida E, Gibson T, Mendonça P, Costa M, Barros J, Yanagisawa T, Watanabe M, Ikeda Y, Aoki M, Nagata T, Coutinho P, Sequeiros J, Koenig M. The gene mutated in ataxia-ocular apraxia 1 encodes the new HIT/Zn-finger protein aprataxin. Nat Genet 2001; 29:189-93. [PMID: 11586300 DOI: 10.1038/ng1001-189] [Citation(s) in RCA: 302] [Impact Index Per Article: 12.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/09/2022]
Abstract
The newly recognized ataxia-ocular apraxia 1 (AOA1; MIM 208920) is the most frequent cause of autosomal recessive ataxia in Japan and is second only to Friedreich ataxia in Portugal. It shares several neurological features with ataxia-telangiectasia, including early onset ataxia, oculomotor apraxia and cerebellar atrophy, but does not share its extraneurological features (immune deficiency, chromosomal instability and hypersensitivity to X-rays). AOA1 is also characterized by axonal motor neuropathy and the later decrease of serum albumin levels and elevation of total cholesterol. We have identified the gene causing AOA1 and the major Portuguese and Japanese mutations. This gene encodes a new, ubiquitously expressed protein that we named aprataxin. This protein is composed of three domains that share distant homology with the amino-terminal domain of polynucleotide kinase 3'- phosphatase (PNKP), with histidine-triad (HIT) proteins and with DNA-binding C2H2 zinc-finger proteins, respectively. PNKP is involved in DNA single-strand break repair (SSBR) following exposure to ionizing radiation and reactive oxygen species. Fragile-HIT proteins (FHIT) cleave diadenosine tetraphosphate, which is potentially produced during activation of the SSBR complex. The results suggest that aprataxin is a nuclear protein with a role in DNA repair reminiscent of the function of the protein defective in ataxia-telangiectasia, but that would cause a phenotype restricted to neurological signs when mutant.
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Abe K, Aoki M, Kawagoe J, Yoshida T, Hattori A, Kogure K, Itoyama Y. Ischemic delayed neuronal death. A mitochondrial hypothesis. Stroke 1995; 26:1478-89. [PMID: 7631357 DOI: 10.1161/01.str.26.8.1478] [Citation(s) in RCA: 239] [Impact Index Per Article: 8.0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/26/2023]
Abstract
BACKGROUND A brief period of global brain ischemia causes cell death in hippocampal CA1 pyramidal neurons days after reperfusion in rodents and humans. Other neurons are much less vulnerable. This phenomenon is commonly referred to as delayed neuronal death, but the cause has not been fully understood although many mechanisms have been proposed. SUMMARY OF REVIEW Hippocampal CA1 neuronal death usually occurs 3 to 4 days after an initial ischemic insult. Such a delay is essential for the mechanism of this type of cell death. Previous hypotheses have not well explained the reason for the delay and the exact mechanism of the cell death, but a disturbance of mitochondrial gene expression could be a possibility. Reductions of mitochondrial RNA level and the activity of a mitochondrial protein, encoded partly by mitochondrial DNA, occurred exclusively in CA1 neurons at the early stage of reperfusion and were aggravated over time. In contrast, the activity of a nuclear DNA-encoded mitochondrial enzyme and the level of mitochondrial DNA remained intact in CA1 cells until death. Immunohistochemical staining for cytoplasmic dynein and kinesin, which are involved in the shuttle movement of mitochondria between cell body and the periphery, also showed early and progressive decreases after ischemia, and the decreases were found exclusively in the vulnerable CA1 subfield. CONCLUSIONS A disturbance of mitochondrial DNA expression may be caused by dysfunction of the mitochondrial shuttle system and could cause progressive failure of energy production of CA1 neurons that eventually results in cell death. Thus, the mitochondrial hypothesis could provide a new and exciting potential for elucidating the mechanism of the delayed neuronal death of hippocampal CA1 neurons.
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239 |
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Aoki M, Batista O, Bellacosa A, Tsichlis P, Vogt PK. The akt kinase: molecular determinants of oncogenicity. Proc Natl Acad Sci U S A 1998; 95:14950-5. [PMID: 9843996 PMCID: PMC24556 DOI: 10.1073/pnas.95.25.14950] [Citation(s) in RCA: 228] [Impact Index Per Article: 8.4] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/11/2022] Open
Abstract
The serine-threonine kinase Akt is a downstream target of phosphoinositide 3-kinase (PI 3-kinase); it is activated by the phosphoinositide 3-phosphate-dependent kinases PDK1 and PDK2. Certain mutated forms of Akt induce oncogenic transformation in chicken embryo fibroblast cultures and hemangiosarcomas in young chickens. This ability to transform cells depends on localization of Akt at the plasma membrane and on the kinase activity of Akt. A transdominant negative form of Akt interferes with oncogenic transformation induced by the p3k oncogene, which codes for an activated form of PI 3-kinase. Akt is therefore an essential mediator of p3k-induced oncogenicity.
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228 |
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Aoki M, Blazek E, Vogt PK. A role of the kinase mTOR in cellular transformation induced by the oncoproteins P3k and Akt. Proc Natl Acad Sci U S A 2001; 98:136-41. [PMID: 11134523 PMCID: PMC14557 DOI: 10.1073/pnas.98.1.136] [Citation(s) in RCA: 208] [Impact Index Per Article: 8.7] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/30/2022] Open
Abstract
The oncoproteins P3k (homolog of the catalytic subunit of class IA phosphoinositide 3-kinase) and Akt (protein kinase B) induce oncogenic transformation of chicken embryo fibroblasts. The transformed cells show constitutive phosphorylation of the positive regulator of translation p70S6 kinase (S6K) and of the eukaryotic initiation factor 4E-BP1 binding protein (4E-BP1), a negative regulator of translation. Phosphorylation activates S6K and inactivates 4E-BP1. A mutant of Akt that retains kinase activity but does not induce phosphorylation of S6K or of 4E-BP1 fails to transform chicken embryo fibroblasts, suggesting a correlation between the oncogenicity of Akt and phosphorylation of S6K and 4E-BP1. The macrolide antibiotic rapamycin effectively blocks oncogenic transformation induced by either P3k or Akt but does not reduce the transforming activity of 11 other oncoproteins. Rapamycin inhibits the kinase mTOR, an important regulator of translation, and this inhibition requires binding of the antibiotic to the immunophilin FKBP12. Displacement of rapamycin from FKBP12 relieves the inhibition of mTOR and also restores P3k-induced transformation. These data are in accord with the hypothesis that transformation by P3k or Akt involves intervention in translational controls.
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208 |
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Jiang BH, Aoki M, Zheng JZ, Li J, Vogt PK. Myogenic signaling of phosphatidylinositol 3-kinase requires the serine-threonine kinase Akt/protein kinase B. Proc Natl Acad Sci U S A 1999; 96:2077-81. [PMID: 10051597 PMCID: PMC26739 DOI: 10.1073/pnas.96.5.2077] [Citation(s) in RCA: 208] [Impact Index Per Article: 8.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Accepted: 12/30/1998] [Indexed: 11/18/2022] Open
Abstract
The oncogene p3k, coding for a constitutively active form of phosphatidylinositol 3-kinase (PI 3-kinase), strongly activates myogenic differentiation. Inhibition of endogenous PI 3-kinase activity with the specific inhibitor LY294002, or with dominant-negative mutants of PI 3-kinase, interferes with myotube formation and with the expression of muscle-specific proteins. Here we demonstrate that a downstream target of PI 3-kinase, serine-threonine kinase Akt, plays an important role in myogenic differentiation. Expression of constitutively active forms of Akt dramatically enhances myotube formation and expression of the muscle-specific proteins MyoD, creatine kinase, myosin heavy chain, and desmin. Transdominant negative forms of Akt inhibit myotube formation and the expression of muscle-specific proteins. The inhibition of myotube formation and the reduced expression of muscle-specific proteins caused by the PI 3-kinase inhibitor LY294002 are completely reversed by constitutively active forms of Akt. Wild-type cellular Akt effects a partial reversal of LY294002-induced inhibition of myogenic differentiation. This result suggests that Akt can substitute for PI 3-kinase in the stimulation of myogenesis; Akt may be an essential downstream component of PI 3-kinase-induced muscle differentiation.
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Aad G, Abbott B, Abdallah J, Abdel Khalek S, Abdinov O, Aben R, Abi B, Abolins M, AbouZeid O, Abramowicz H, Abreu H, Abreu R, Abulaiti Y, Acharya B, Adamczyk L, Adams D, Adelman J, Adomeit S, Adye T, Agatonovic-Jovin T, Aguilar-Saavedra J, Agustoni M, Ahlen S, Ahmadov F, Aielli G, Akerstedt H, Åkesson T, Akimoto G, Akimov A, Alberghi G, Albert J, Albrand S, Alconada Verzini M, Aleksa M, Aleksandrov I, Alexa C, Alexander G, Alexandre G, Alexopoulos T, Alhroob M, Alimonti G, Alio L, Alison J, Allbrooke B, Allison L, Allport P, Almond J, Aloisio A, Alonso A, Alonso F, Alpigiani C, Altheimer A, Alvarez Gonzalez B, Alviggi M, Amako K, Amaral Coutinho Y, Amelung C, Amidei D, Amor Dos Santos S, Amorim A, Amoroso S, Amram N, Amundsen G, Anastopoulos C, Ancu L, Andari N, Andeen T, Anders C, Anders G, Anderson K, Andreazza A, Andrei V, Anduaga X, Angelidakis S, Angelozzi I, Anger P, Angerami A, Anghinolfi F, Anisenkov A, Anjos N, Annovi A, Antonaki A, Antonelli M, Antonov A, Antos J, Anulli F, Aoki M, Aperio Bella L, Apolle R, Arabidze G, Aracena I, Arai Y, Araque J, Arce A, Arguin JF, Argyropoulos S, Arik M, Armbruster A, Arnaez O, Arnal V, Hamilton S, Hamity G, Hamnett P, Han L, Hanagaki K, Hanawa K, Hance M, Hanke P, Hanna R, Hansen J, Arnold H, Hansen J, Hansen P, Hara K, Hard A, Harenberg T, Hariri F, Harkusha S, Harper D, Harrington R, Harris O, Arratia M, Harrison P, Hartjes F, Hasegawa M, Hasegawa S, Hasegawa Y, Hasib A, Hassani S, Haug S, Hauschild M, Hauser R, Arslan O, Havranek M, Hawkes C, Hawkings R, Hawkins A, Hayashi T, Hayden D, Hays C, Hayward H, Haywood S, Head S, Artamonov A, Heck T, Hedberg V, Heelan L, Heim S, Heim T, Heinemann B, Heinrich L, Hejbal J, Helary L, Heller C, Artoni G, Heller M, Hellman S, Hellmich D, Helsens C, Henderson J, Henderson R, Heng Y, Hengler C, Henrichs A, Henriques Correia A, Asai S, Henrot-Versille S, Hensel C, Herbert G, Hernández Jiménez Y, Herrberg-Schubert R, Herten G, Hertenberger R, Hervas L, Hesketh G, Hessey N, Asbah N, Hickling R, Higón-Rodriguez E, Hill E, Hill J, Hiller K, Hillert S, Hillier S, Hinchliffe I, Hines E, Hirose M, Ashkenazi A, Hirschbuehl D, Hobbs J, Hod N, Hodgkinson M, Hodgson P, Hoecker A, Hoeferkamp M, Hoenig F, Hoffman J, Hoffmann D, Åsman B, Hofmann J, Hohlfeld M, Holmes T, Hong T, Hooft van Huysduynen L, Hopkins W, Horii Y, Hostachy JY, Hou S, Hoummada A, Asquith L, Howard J, Howarth J, Hrabovsky M, Hristova I, Hrivnac J, Hryn’ova T, Hsu C, Hsu P, Hsu SC, Hu D, Assamagan K, Hu X, Huang Y, Hubacek Z, Hubaut F, Huegging F, Huffman T, Hughes E, Hughes G, Huhtinen M, Hülsing T, Astalos R, Hurwitz M, Huseynov N, Huston J, Huth J, Iacobucci G, Iakovidis G, Ibragimov I, Iconomidou-Fayard L, Ideal E, Iengo P, Atkinson M, Igonkina O, Iizawa T, Ikegami Y, Ikematsu K, Ikeno M, Ilchenko Y, Iliadis D, Ilic N, Inamaru Y, Ince T, Atlay N, Ioannou P, Iodice M, Iordanidou K, Ippolito V, Irles Quiles A, Isaksson C, Ishino M, Ishitsuka M, Ishmukhametov R, Issever C, Auerbach B, Istin S, Iturbe Ponce J, Iuppa R, Ivarsson J, Iwanski W, Iwasaki H, Izen J, Izzo V, Jackson B, Jackson M, Augsten K, Jackson P, Jaekel M, Jain V, Jakobs K, Jakobsen S, Jakoubek T, Jakubek J, Jamin D, Jana D, Jansen E, Aurousseau M, Jansen H, Janssen J, Janus M, Jarlskog G, Javadov N, Javůrek T, Jeanty L, Jejelava J, Jeng GY, Jennens D, Avolio G, Jenni P, Jentzsch J, Jeske C, Jézéquel S, Ji H, Jia J, Jiang Y, Jimenez Belenguer M, Jin S, Jinaru A, Azuelos G, Jinnouchi O, Joergensen M, Johansson K, Johansson P, Johns K, Jon-And K, Jones G, Jones R, Jones T, Jongmanns J, Azuma Y, Jorge P, Joshi K, Jovicevic J, Ju X, Jung C, Jungst R, Jussel P, Juste Rozas A, Kaci M, Kaczmarska A, Baak M, Kado M, Kagan H, Kagan M, Kajomovitz E, Kalderon C, Kama S, Kamenshchikov A, Kanaya N, Kaneda M, Kaneti S, Baas A, Kantserov V, Kanzaki J, Kaplan B, Kapliy A, Kar D, Karakostas K, Karastathis N, Kareem M, Karnevskiy M, Karpov S, Bacci C, Karpova Z, Karthik K, Kartvelishvili V, Karyukhin A, Kashif L, Kasieczka G, Kass R, Kastanas A, Kataoka Y, Katre A, Bachacou H, Katzy J, Kaushik V, Kawagoe K, Kawamoto T, Kawamura G, Kazama S, Kazanin V, Kazarinov M, Keeler R, Kehoe R, Bachas K, Keil M, Keller J, Kempster J, Keoshkerian H, Kepka O, Kerševan B, Kersten S, Kessoku K, Keung J, Khalil-zada F, Backes M, Khandanyan H, Khanov A, Khodinov A, Khomich A, Khoo T, Khoriauli G, Khoroshilov A, Khovanskiy V, Khramov E, Khubua J, Backhaus M, Kim H, Kim H, Kim S, Kimura N, Kind O, King B, King M, King R, King S, Kirk J, Backus Mayes J, Kiryunin A, Kishimoto T, Kisielewska D, Kiss F, Kittelmann T, Kiuchi K, Kladiva E, Klein M, Klein U, Kleinknecht K, Badescu E, Klimek P, Klimentov A, Klingenberg R, Klinger J, Klioutchnikova T, Klok P, Kluge EE, Kluit P, Kluth S, Kneringer E, Bagiacchi P, Knoops E, Knue A, Kobayashi D, Kobayashi T, Kobel M, Kocian M, Kodys P, Koevesarki P, Koffas T, Koffeman E, Bagnaia P, Kogan L, Kohlmann S, Kohout Z, Kohriki T, Koi T, Kolanoski H, Koletsou I, Koll J, Komar A, Komori Y, Bai Y, Kondo T, 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Search for new phenomena in the dijet mass distribution using ppcollision data at s=8 TeVwith the ATLAS detector. Int J Clin Exp Med 2015. [DOI: 10.1103/physrevd.91.052007] [Citation(s) in RCA: 201] [Impact Index Per Article: 20.1] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/07/2022]
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Cogan J, Coggeshall J, Cole B, Cole S, Colijn A, Collot J, Colombo T, Colon G, Compostella G, Conde Muiño P, Coniavitis E, Conidi M, Connell S, Connelly I, Consonni S, Consorti V, Constantinescu S, Conta C, Conti G, Conventi F, Cooke M, Cooper B, Cooper-Sarkar A, Cooper-Smith N, Copic K, Cornelissen T, Corradi M, Corriveau F, Corso-Radu A, Cortes-Gonzalez A, Cortiana G, Costa G, Costa M, Costanzo D, Côté D, Cottin G, Cowan G, Cox B, Cranmer K, Cree G, Crépé-Renaudin S, Crescioli F, Cribbs W, Crispin Ortuzar M, Cristinziani M, Croft V, Crosetti G, Cuciuc CM, Cuhadar Donszelmann T, Cummings J, Curatolo M, Cuthbert C, Czirr H, Czodrowski P, Czyczula Z, D’Auria S, D’Onofrio M, Da Cunha Sargedas De Sousa M, Da Via C, Dabrowski W, Dafinca A, Dai T, Dale O, Dallaire F, Dallapiccola C, Dam M, Daniells A, Dano Hoffmann M, Dao V, Darbo G, Darmora S, Dassoulas J, Dattagupta A, Davey W, David C, Davidek T, Davies E, Davies M, Davignon O, Davison A, Davison P, Davygora Y, Dawe E, Dawson I, 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Dolezal Z, Dolgoshein B, Donadelli M, Donati S, Dondero P, Donini J, Dopke J, Doria A, Dova M, Doyle A, Dris M, Dubbert J, Dube S, Dubreuil E, Duchovni E, Duckeck G, Ducu O, Duda D, Dudarev A, Dudziak F, Duflot L, Duguid L, Dührssen M, Dunford M, Duran Yildiz H, Düren M, Durglishvili A, Dwuznik M, Dyndal M, Ebke J, Edson W, Edwards N, Ehrenfeld W, Eifert T, Eigen G, Einsweiler K, Ekelof T, El Kacimi M, Ellert M, Elles S, Ellinghaus F, Ellis N, Elmsheuser J, Elsing M, Emeliyanov D, Enari Y, Endner O, Endo M, Engelmann R, Erdmann J, Ereditato A, Eriksson D, Ernis G, Ernst J, Ernst M, Ernwein J, Errede D, Errede S, Ertel E, Escalier M, Esch H, Escobar C, Esposito B, Etienvre A, Etzion E, Evans H, Ezhilov A, Fabbri L, Facini G, Fakhrutdinov R, Falciano S, Falla R, Faltova J, Fang Y, Fanti M, Farbin A, Farilla A, Farooque T, Farrell S, Farrington S, Farthouat P, Fassi F, Fassnacht P, Fassouliotis D, Favareto A, Fayard L, Federic P, Fedin O, Fedorko W, Fehling-Kaschek M, Feigl S, Feligioni L, Feng C, Feng E, Feng H, Fenyuk A, Fernandez Perez S, Ferrag S, Ferrando J, Ferrari A, Ferrari P, Ferrari R, Ferreira de Lima D, Ferrer A, Ferrere D, Ferretti C, Ferretto Parodi A, Fiascaris M, Fiedler F, Filipčič A, Filipuzzi M, Filthaut F, Fincke-Keeler M, Finelli K, Fiolhais M, Fiorini L, Firan A, Fischer A, Fischer J, Fisher W, Fitzgerald E, Flechl M, Fleck I, Fleischmann P, Fleischmann S, Fletcher G, Fletcher G, Flick T, Floderus A, Flores Castillo L, Florez Bustos A, Flowerdew M, Formica A, Forti A, Fortin D, Fournier D, Fox H, Fracchia S, Francavilla P, Franchini M, Franchino S, Francis D, Franconi L, Franklin M, Franz S, Fraternali M, French S, Friedrich C, Friedrich F, Froidevaux D, Frost J, Fukunaga C, Fullana Torregrosa E, Fulsom B, Fuster J, Gabaldon C, Gabizon O, Gabrielli A, Gabrielli A, Gadatsch S, Gadomski S, Gagliardi G, Gagnon P, Galea C, Galhardo B, Gallas E, Gallo V, Gallop B, Gallus P, Galster G, Gan K, Gao J, Gao Y, Garay Walls F, Garberson F, García C, García Navarro J, Garcia-Sciveres M, Gardner R, Garelli N, Garonne V, Gatti C, Gaudio G, Gaur B, Gauthier L, Gauzzi P, Gavrilenko I, Gay C, Gaycken G, Gazis E, Ge P, Gecse Z, Gee C, Geerts D, Geich-Gimbel C, Gellerstedt K, Gemme C, Gemmell A, Genest M, Gentile S, George M, George S, Gerbaudo D, Gershon A, Ghazlane H, Ghodbane N, Giacobbe B, Giagu S, Giangiobbe V, Giannetti P, Gianotti F, Gibbard B, Gibson S, Gilchriese M, Gillam T, Gillberg D, Gilles G, Gingrich D, Giokaris N, Giordani M, Giordano R, Giorgi F, Giorgi F, Giraud P, Giugni D, Giuliani C, Giulini M, Gjelsten B, Gkaitatzis S, Gkialas I, Gladilin L, Glasman C, Glatzer J, Glaysher P, Glazov A, Glonti G, Goblirsch-Kolb M, Goddard J, Godlewski J, Goeringer C, Goldfarb S, Golling T, Golubkov D, Gomes A, Gomez Fajardo L, Gonçalo R, Goncalves Pinto Firmino Da Costa J, Gonella L, González de la Hoz S, Gonzalez Parra G, Gonzalez-Sevilla S, Goossens L, Gorbounov P, Gordon H, Gorelov I, Gorini B, Gorini E, Gorišek A, Gornicki E, Goshaw A, Gössling C, Gostkin M, Gouighri M, Goujdami D, Goulette M, Goussiou A, Goy C, Gozpinar S, Grabas H, Graber L, Grabowska-Bold I, Grafström P, Grahn KJ, Gramling J, Gramstad E, Grancagnolo S, Grassi V, Gratchev V, Gray H, Graziani E, Grebenyuk O, Greenwood Z, Gregersen K, Gregor I, Grenier P, Griffiths J, Grillo A, Grimm K, Grinstein S, Gris P, Grishkevich Y, Grivaz JF, Grohs J, Grohsjean A, Gross E, Grosse-Knetter J, Grossi G, Groth-Jensen J, Grout Z, Guan L, Guenther J, Guescini F, Guest D, Gueta O, Guicheney C, Guido E, Guillemin T, Guindon S, Gul U, Gumpert C, Guo J, Gupta S, Gutierrez P, Gutierrez Ortiz N, Gutschow C, Guttman N, Guyot C, Gwenlan C, Gwilliam C, Haas A, Haber C, Hadavand H, Haddad N, Haefner P, Hageböck S, Hajduk Z, Hakobyan H, Haleem M, Hall D, Halladjian G, Hamacher K, Hamal P, Hamano K. Measurement of Higgs boson production in the diphoton decay channel in ppcollisions at center-of-mass energies of 7 and 8 TeV with the ATLAS detector. Int J Clin Exp Med 2014. [DOI: 10.1103/physrevd.90.112015] [Citation(s) in RCA: 197] [Impact Index Per Article: 17.9] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/07/2022]
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Aoki M, Morishita R, Taniyama Y, Kida I, Moriguchi A, Matsumoto K, Nakamura T, Kaneda Y, Higaki J, Ogihara T. Angiogenesis induced by hepatocyte growth factor in non-infarcted myocardium and infarcted myocardium: up-regulation of essential transcription factor for angiogenesis, ets. Gene Ther 2000; 7:417-27. [PMID: 10694824 DOI: 10.1038/sj.gt.3301104] [Citation(s) in RCA: 188] [Impact Index Per Article: 7.5] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/15/2022]
Abstract
The feasibility of a novel therapeutic strategy using angiogenic growth factors to expedite and/or augment collateral artery development has recently entered the realm of treatment of ischemic diseases. Hepatocyte growth factor (HGF) is a novel member of endothelium-specific growth factors whose mitogenic activity on endothelial cells is very potent. Although it has been demonstrated that HGF is a potential angiogenic growth factor in in vitro culture systems, there is no direct in vivo evidence for the angiogenic activity of HGF in physiological conditions. In this study, we hypothesized that transfection of HGF gene into infarcted myocardium could induce angiogenesis, potentially resulting in a beneficial response to hypoxia. Human HGF gene or control vector driven by the SRalpha promoter was transfected into rat myocardium by the HVJ-liposome method. Four days after in vivo transfection of human HGF gene, there was a marked increase in human immunoreactive HGF as compared with control vector (P < 0.01). In myocardium transfected with HGF vector, a significant increase in PCNA-positive endothelial cells was observed, while few PCNA-positive endothelial cells were detected in both control-vector-transfected and untreated myocardium. The number of vessels around the HGF injection sites was significantly increased as compared with control vector or vehicle (P < 0.01). Angiogenic activity induced by the transfection of HGF vector was also confirmed by the activation of a transcription factor, ets, which is essential for angiogenesis. Furthermore, we studied the pathophysiological role of HGF in a myocardial infarction model. The concentration of endogenous HGF was significantly decreased in infarcted myocardium. Therefore, we hypothesized that transfection of HGF gene into infarcted myocardium could induce a beneficial response to the decreased endogenous HGF. Indeed, transfection of human HGF into infarcted myocardium also resulted in a significant increase in the number of vessels (P < 0. 01), accompanied by marked induction of ets binding activity and a significant increase in blood flow. Overall, the present results provide direct in vivo evidence for the induction of angiogenesis by transfection of the human HGF gene in rat non-infarcted and infarcted myocardium. The constant production of local HGF resulting from the transgene may be considered as an innovative therapeutic angiogenesis strategy for ischemic diseases such as myocardial infarction. Gene Therapy (2000) 7, 417-427.
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Aoki M, Nata T, Morishita R, Matsushita H, Nakagami H, Yamamoto K, Yamazaki K, Nakabayashi M, Ogihara T, Kaneda Y. Endothelial apoptosis induced by oxidative stress through activation of NF-kappaB: antiapoptotic effect of antioxidant agents on endothelial cells. Hypertension 2001; 38:48-55. [PMID: 11463759 DOI: 10.1161/01.hyp.38.1.48] [Citation(s) in RCA: 185] [Impact Index Per Article: 7.7] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/16/2022]
Abstract
Injury of endothelial cells has been assumed to be an initial trigger of the development of atherosclerosis. In this study, we investigated the molecular mechanisms of endothelial cell death induced by hypoxia, which leads to oxidative stress. To study the relation between hypoxia-induced cell death and activation of nuclear factor-kappaB (NF-kappaB) in a hypoxic state, we evaluated the effect of 2 antioxidant drugs, probucol and pyrrolidine dithiocarbamate (PDTC), on human endothelial apoptosis. Although hypoxic treatment of human aortic endothelial cells resulted in a significant decrease in cell number and a significant increase in apoptotic cells compared with that of cells under normoxia (P<0.01), treatment with probucol (50 micromol/L) or PDTC (100 micromol/L) significantly attenuated the decrease in cell number (P<0.01) and was accompanied by inhibition of NF-kappaB activation. Furthermore, downregulation of bcl-2 caused by hypoxia was inhibited by these drugs. We further investigated the translocation of bax protein from the cytoplasm to the mitochondrial heavy fraction membrane, as translocation of bax protein is considered to be a determinant of apoptosis. Interestingly, we found that antioxidant treatment inhibited the translocation of bax protein caused by hypoxia. Moreover, upregulation of p53, a proapoptotic molecule, was observed in hypoxia, whereas treatment with probucol attenuated the expression of p53 accompanied by suppression of NF-kappaB activation. These data suggest functional links between p53 and endothelial apoptosis through the activation of NF-kappaB. Overall, the current study demonstrated that oxidative stress induced apoptosis in human aortic endothelial cells through the downregulation of bcl-2, translocation of bax, and upregulation of p53, probably through NF-kappaB activation. Oxidative stress may play an important role in endothelial apoptosis mediated by hypoxia, through the activation of NF-kappaB.
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Angelidakis S, Angerami A, Anisenkov A, Annovi A, Antel C, Anthony M, Antonelli M, Antrim D, Anulli F, Aoki M, Aparisi Pozo J, Aperio Bella L, Arabidze G, Araque J, Araujo Ferraz V, Hadavand H, Haddad N, Hadef A, Hageböck S, Hagihara M, Haleem M, Haley J, Halladjian G, Hallewell G, Hamacher K, Araujo Pereira R, Hamal P, Hamano K, Hamdaoui H, Hamity G, Han K, Han L, Han S, Hanagaki K, Hance M, Handl D, Arcangeletti C, Haney B, Hankache R, Hansen E, Hansen J, Hansen J, Hansen M, Hansen P, Hanson E, Hara K, Hard A, Arce A, Harenberg T, Harkusha S, Harrison P, Hartmann N, Hasegawa Y, Hasib A, Hassani S, Haug S, Hauser R, Havener L, Arduh F, Havranek M, Hawkes C, Hawkings R, Hayden D, Hayes C, Hayes R, Hays C, Hays J, Hayward H, Haywood S, Arguin JF, He F, Heath M, Hedberg V, Heelan L, Heer S, Heidegger K, Heidorn W, Heilman J, Heim S, Heim T, Argyropoulos S, Heinemann B, Heinrich J, Heinrich L, Heinz C, Hejbal J, Helary L, Held A, Hellesund S, Helling C, Hellman S, Arling JH, Helsens C, 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D, Gomes A, Goncalves Gama R, Gonçalo R, Gonella G, Gonella L, Gongadze A, Gonnella F, Gonski J, González de la Hoz S, Gonzalez-Sevilla S, Gonzalvo Rodriguez G, Goossens L, Gorbounov P, Gordon H, Gorini B, Gorini E, Gorišek A, Goshaw A, Gostkin M, Gottardo C, Gouighri M, Goujdami D, Goussiou A, Govender N, Goy C, Gozani E, Grabowska-Bold I, Graham E, Gramling J, Gramstad E, Grancagnolo S, Grandi M, Gratchev V, Gravila P, Gravili F, Gray C, Gray H, Grefe C, Gregersen K, Gregor I, Grenier P, Grevtsov K, Grieco C, Grieser N, Griffiths J, Grillo A, Grimm K, Grinstein S, Grivaz JF, Groh S, Gross E, Grosse-Knetter J, Grout Z, Grud C, Grummer A, Guan L, Guan W, Guenther J, Guerguichon A, Guerrero Rojas J, Guescini F, Guest D, Gugel R, Guillemin T, Guindon S, Gul U, Guo J, Guo W, Guo Y, Guo Z, Gupta R, Gurbuz S, Gustavino G, Gutierrez P, Gutschow C, Guyot C, Guzik M, Gwenlan C, Gwilliam C, Haas A, Haber C. Combined measurements of Higgs boson production and decay using up to
80 fb−1
of proton-proton collision data at
s=13 TeV
collected with the ATLAS experiment. Int J Clin Exp Med 2020. [DOI: 10.1103/physrevd.101.012002] [Citation(s) in RCA: 178] [Impact Index Per Article: 35.6] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/07/2022]
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Aoki M, Okamura K, Fukushima S, Takahashi T, Ogino T. TRANSFER OF LATISSIMUS DORSI FOR IRREPARABLE ROTATOR-CUFF TEARS. ACTA ACUST UNITED AC 1996. [DOI: 10.1302/0301-620x.78b5.0780761] [Citation(s) in RCA: 172] [Impact Index Per Article: 5.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/05/2022]
Abstract
We treated 12 shoulders in ten patients with irreparable rotator-cuff tears by transfer of the latissimus dorsi. There were nine men and one woman. Their average age was 64.0 years and the average follow-up was 35.6 months (26 to 42). The results were excellent in four shoulders, good in four, fair in one, and poor in three. Active forward flexion improved from a preoperative average of 99° to a postoperative average of 135°. Osteoarthritic changes appeared in five shoulders and proximal migration of the humeral head progressed in six. EMG revealed that nine of the 12 transferred muscles showed activity which was synergistic with the supraspinatus on external rotation with abduction. We conclude that latissimus dorsi transfer can be effective in restoring shoulder function after massive irreparable tears of the rotator cuff.
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Matsuda C, Hayashi YK, Ogawa M, Aoki M, Murayama K, Nishino I, Nonaka I, Arahata K, Brown RH. The sarcolemmal proteins dysferlin and caveolin-3 interact in skeletal muscle. Hum Mol Genet 2001; 10:1761-6. [PMID: 11532985 DOI: 10.1093/hmg/10.17.1761] [Citation(s) in RCA: 166] [Impact Index Per Article: 6.9] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/13/2022] Open
Abstract
Dysferlin is a surface membrane protein in skeletal muscle whose deficiency causes distal and proximal, recessively inherited, forms of muscular dystrophy designated Miyoshi myopathy (MM) and limb girdle muscular dystrophy type 2B (LGMD2B), respectively. The function of dysferlin is not defined. Caveolin-3 is another skeletal muscle membrane protein which is important in the formation of caveolae and whose mutations cause dominantly inherited limb girdle muscular dystrophy type 1C (LGMD1C). We report that dysferlin co-immunoprecipitates with caveolin-3 from biopsied normal human skeletal muscles. We also describe abnormal localization of dysferlin in muscles from patients with LGMD1C including novel missense mutation (T64P) in the human caveolin-3 gene (CAV3). The immunoprecipitation data are consistent with the parallel observation that dysferlin immunostaining is not normal in LGMD1C muscles. Amino acid sequence analysis of the dysferlin protein reveals seven sites that correspond to caveolin-3 scaffold-binding motifs, and one site that is a potential target to bind the WW domain of the caveolin-3 protein. This is the first description of a possible dysferlin interacting protein; it suggests the hypothesis that one function of dysferlin may be to interact with caveolin-3 to subserve signaling functions of caveolae.
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Aad G, Abbott B, Abdallah J, Abdel Khalek S, Abdinov O, Aben R, Abi B, Abidi S, Abolins M, AbouZeid O, Abramowicz H, Abreu H, Abreu R, Abulaiti Y, Acharya B, Adamczyk L, Adams D, Adelman J, Adomeit S, Adye T, Agatonovic-Jovin T, Aguilar-Saavedra J, Agustoni M, Ahlen S, Ahmadov F, Aielli G, Akerstedt H, Åkesson T, Akimoto G, Akimov A, Alberghi G, Albert J, Albrand S, Alconada Verzini M, Aleksa M, Aleksandrov I, Alexa C, Alexander G, Alexandre G, Alexopoulos T, Alhroob M, Alimonti G, Alio L, Alison J, Allbrooke B, Allison L, Allport P, Almond J, Aloisio A, Alonso A, Alonso F, Alpigiani C, Altheimer A, Alvarez Gonzalez B, Alviggi M, Amako K, Amaral Coutinho Y, Amelung C, Amidei D, Amor Dos Santos S, Amorim A, Amoroso S, Amram N, Amundsen G, Anastopoulos C, Ancu L, Andari N, Andeen T, Anders C, Anders G, Anderson K, Andreazza A, Andrei V, Anduaga X, Angelidakis S, Angelozzi I, Anger P, Angerami A, Anghinolfi F, Anisenkov A, Anjos N, Annovi A, Antonaki A, Antonelli M, Antonov A, Antos J, 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B, Blackburn D, Tojo J, Tokár S, Tokushuku K, Tollefson K, Tomlinson L, Tomoto M, Tompkins L, Toms K, Topilin N, Torrence E, Blair R, Torres H, Torró Pastor E, Toth J, Touchard F, Tovey D, Tran H, Trefzger T, Tremblet L, Tricoli A, Trigger I, Blanchard JB, Trincaz-Duvoid S, Tripiana M, Trischuk W, Trocmé B, Troncon C, Trottier-McDonald M, Trovatelli M, True P, Trzebinski M, Trzupek A, Blazek T, Tsarouchas C, Tseng JL, Tsiareshka P, Tsionou D, Tsipolitis G, Tsirintanis N, Tsiskaridze S, Tsiskaridze V, Tskhadadze E, Tsukerman I, Bloch I, Tsulaia V, Tsuno S, Tsybychev D, Tudorache A, Tudorache V, Tuna A, Tupputi S, Turchikhin S, Turecek D, Turk Cakir I, Blocker C, Turra R, Tuts P, Tykhonov A, Tylmad M, Tyndel M, Uchida K, Ueda I, Ueno R, Ughetto M, Ugland M, Blum W, Uhlenbrock M, Ukegawa F, Unal G, Undrus A, Unel G, Ungaro F, Unno Y, Urbaniec D, Urquijo P, Usai G, Blumenschein U, Usanova A, Vacavant L, Vacek V, Vachon B, Valencic N, Valentinetti S, Valero A, Valery L, Valkar S, Valladolid Gallego E, Bobbink G, Vallecorsa S, Valls Ferrer J, Van Den Wollenberg W, Van Der Deijl P, van der Geer R, van der Graaf H, Van Der Leeuw R, van der Ster D, van Eldik N, van Gemmeren P, Bobrovnikov V, Van Nieuwkoop J, van Vulpen I, van Woerden M, Vanadia M, Vandelli W, Vanguri R, Vaniachine A, Vankov P, Vannucci F, Vardanyan G, Bocchetta S, Vari R, Varnes E, Varol T, Varouchas D, Vartapetian A, Varvell K, Vazeille F, Vazquez Schroeder T, Veatch J, Veloso F, Bocci A, Veneziano S, Ventura A, Ventura D, Venturi M, Venturi N, Venturini A, Vercesi V, Verducci M, Verkerke W, Vermeulen J, Bock C, Vest A, Vetterli M, Viazlo O, Vichou I, Vickey T, Vickey Boeriu O, Viehhauser G, Viel S, Vigne R, Villa M, Boddy C, Villaplana Perez M, Vilucchi E, Vincter M, Vinogradov V, Virzi J, Vivarelli I, Vives Vaque F, Vlachos S, Vladoiu D, Vlasak M, Boehler M, Vogel A, Vogel M, Vokac P, Volpi G, Volpi M, von der Schmitt H, von Radziewski H, von Toerne E, Vorobel V, Vorobev K, Boek T, Vos M, Voss R, Vossebeld 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J, Bortolotto V, Zhang L, Zhang X, Zhang Z, Zhao Z, Zhemchugov A, Zhong J, Zhou B, Zhou L, Zhou N, Zhu C, Bos K, Zhu H, Zhu J, Zhu Y, Zhuang X, Zhukov K, Zibell A, Zieminska D, Zimine N, Zimmermann C, Zimmermann R, Boscherini D, Zimmermann S, Zimmermann S, Zinonos Z, Ziolkowski M, Zobernig G, Zoccoli A, zur Nedden M, Zurzolo G, Zutshi V, Zwalinski L, Bosman M, Boterenbrood H, Boudreau J, Bouffard J, Bouhova-Thacker E, Boumediene D, Bourdarios C, Bousson N, Boutouil S, Boveia A, Boyd J, Boyko I, Bracinik J, Brandt A, Brandt G, Brandt O, Bratzler U, Brau B, Brau J, Braun H, Brazzale S, Brelier B, Brendlinger K, Brennan A, Brenner R, Bressler S, Bristow K, Bristow T, Britton D, Brochu F, Brock I, Brock R, Bromberg C, Bronner J, Brooijmans G, Brooks T, Brooks W, Brosamer J, Brost E, Brown J, Bruckman de Renstrom P, Bruncko D, Bruneliere R, Brunet S, Bruni A, Bruni G, Bruschi M, Bryngemark L, Buanes T, Buat Q, Bucci F, Buchholz P, Buckingham R, Buckley A, Buda S, Budagov I, Buehrer F, Bugge L, Bugge M, Bulekov O, Bundock A, Burckhart H, Burdin S, Burghgrave B, Burke S, Burmeister I, Busato E, Büscher D, Büscher V, Bussey P, Buszello C, Butler B, Butler J, Butt A, Buttar C, Butterworth J, Butti P, Buttinger W, Buzatu A, Byszewski M, Cabrera Urbán S, Caforio D, Cakir O, Calafiura P, Calandri A, Calderini G, Calfayan P, Calkins R, Caloba L, Calvet D, Calvet S, Camacho Toro R, Camarda S, Cameron D, Caminada L, Caminal Armadans R, Campana S, Campanelli M, Campoverde A, Canale V, Canepa A, Cano Bret M, Cantero J, Cantrill R, Cao T, Capeans Garrido M, Caprini I, Caprini M, Capua M, Caputo R, Cardarelli R, Carli T, Carlino G, Carminati L, Caron S, Carquin E, Carrillo-Montoya G, Carter J, Carvalho J, Casadei D, Casado M, Casolino M, Castaneda-Miranda E, Castelli A, Castillo Gimenez V, Castro N, Catastini P, Catinaccio A, Catmore J, Cattai A, Cattani G, Caughron S, Cavaliere V, Cavalli D, Cavalli-Sforza M, Cavasinni V, Ceradini F, Cerio B, Cerny K, Cerqueira A, Cerri A, Cerrito L, Cerutti F, Cerv M, Cervelli A, Cetin S, Chafaq A, Chakraborty D, Chalupkova I, Chang P, Chapleau B, Chapman J, Charfeddine D, Charlton D, Chau C, Chavez Barajas C, Cheatham S, Chegwidden A, Chekanov S, Chekulaev S, Chelkov G, Chelstowska M, Chen C, Chen H, Chen K, Chen L, Chen S, Chen X, Chen Y, Chen Y, Cheng H, Cheng Y, Cheplakov A, Cherkaoui El Moursli R, Chernyatin V, Cheu E, Chevalier L, Chiarella V, Chiefari G, Childers J, Chilingarov A, Chiodini G, Chisholm A, Chislett R, Chitan A, Chizhov M, Chouridou S, Chow B, Chromek-Burckhart D, Chu M, Chudoba J, Chwastowski J, Chytka L, Ciapetti G, Ciftci A, Ciftci R, Cinca D, Cindro V, Ciocio A, Cirkovic P, Citron Z, Citterio M, Ciubancan M, Clark A, Clark P, Clarke R, Cleland W, Clemens J, Clement C, Coadou Y, Cobal M, Coccaro A, Cochran J, Coffey L, Cogan J, Coggeshall J, Cole B, Cole S, Colijn A, Collot J, Colombo T, Colon G, Compostella G, Conde Muiño P, Coniavitis E, Conidi M, Connell S, Connelly I, Consonni S, Consorti V, Constantinescu S, Conta C, Conti G, Conventi F, Cooke M, Cooper B, Cooper-Sarkar A, Cooper-Smith N, Copic K, Cornelissen T, Corradi M, Corriveau F, Corso-Radu A, Cortes-Gonzalez A, Cortiana G, Costa G, Costa M, Costanzo D, Côté D, Cottin G, Cowan G, Cox B, Cranmer K, Cree G, Crépé-Renaudin S, Crescioli F, Cribbs W, Crispin Ortuzar M, Cristinziani M, Croft V, Crosetti G, Cuciuc CM, Cuhadar Donszelmann T, Cummings J, Curatolo M, Cuthbert C, Czirr H, Czodrowski P, Czyczula Z, D’Auria S, D’Onofrio M, Da Cunha Sargedas De Sousa M, Da Via C, Dabrowski W, Dafinca A, Dai T, Dale O, Dallaire F, Dallapiccola C, Dam M, Daniells A, Dano Hoffmann M, Dao V, Darbo G, Darmora S, Dassoulas J, Dattagupta A, Davey W, David C, Davidek T, Davies E, Davies M, Davignon O, Davison A, Davison P, Davygora Y, Dawe E, Dawson I, Daya-Ishmukhametova R, De K, de Asmundis R, De Castro S, De Cecco S, De Groot N, de Jong P, De la Torre H, De Lorenzi F, De Nooij L, De Pedis D, De Salvo A, De Sanctis U, De Santo A, De Vivie De Regie J, Dearnaley W, Debbe R, Debenedetti C, Dechenaux B, Dedovich D, Deigaard I, Del Peso J, Del Prete T, Deliot F, Delitzsch C, Deliyergiyev M, Dell’Acqua A, Dell’Asta L, Dell’Orso M, Della Pietra M, della Volpe D, Delmastro M, Delsart P, Deluca C, Demers S, Demichev M, Demilly A, Denisov S, Derendarz D, Derkaoui J, Derue F, Dervan P, Desch K, Deterre C, Deviveiros P, Dewhurst A, Dhaliwal S, Di Ciaccio A, Di Ciaccio L, Di Domenico A, Di Donato C, Di Girolamo A, Di Girolamo B, Di Mattia A, Di Micco B, Di Nardo R, Di Simone A, Di Sipio R, Di Valentino D, Dias F, Diaz M, Diehl E, Dietrich J, Dietzsch T, Diglio S, Dimitrievska A, Dingfelder J, Dionisi C, Dita P, Dita S, Dittus F, Djama F, Djobava T, do Vale M, Do Valle Wemans A, Doan T, Dobos D, Doglioni C, Doherty T, Dohmae T, Dolejsi J, Dolezal Z, Dolgoshein B, Donadelli M, Donati S, Dondero P, Donini J, Dopke J, Doria A, Dova M, Doyle A, Dris M, Dubbert J, Dube S, Dubreuil E, Duchovni E, Duckeck G, Ducu O, Duda D, Dudarev A, Dudziak F, Duflot L, Duguid L, Dührssen M, Dunford M, Duran Yildiz H, Düren M, Durglishvili A, Dwuznik M, Dyndal M, Ebke J, Edson W, Edwards N, Ehrenfeld W, Eifert T, Eigen G, Einsweiler K, Ekelof T, El Kacimi M, Ellert M, Elles S, Ellinghaus F, Ellis N, Elmsheuser J, Elsing M, Emeliyanov D, Enari Y, Endner O, Endo M, Engelmann R, Erdmann J, Ereditato A, Eriksson D, Ernis G, Ernst J, Ernst M, Ernwein J, Errede D, Errede S, Ertel E, Escalier M, Esch H, Escobar C, Esposito B, Etienvre A, Etzion E, Evans H, Ezhilov A, Fabbri L, Facini G, Fakhrutdinov R, Falciano S, Falla R, Faltova J, Fang Y, Fanti M, Farbin A, Farilla A, Farooque T, Farrell S, Farrington S, Farthouat P, Fassi F, Fassnacht P, Fassouliotis D, Favareto A, Fayard L, Federic P, Fedin O, Fedorko W, Fehling-Kaschek M, Feigl S, Feligioni L, Feng C, Feng E, Feng H, Fenyuk A, Fernandez Perez S, Ferrag S, Ferrando J, Ferrari A, Ferrari P, Ferrari R, Ferreira de Lima D, Ferrer A, Ferrere D, Ferretti C, Ferretto Parodi A, Fiascaris M, Fiedler F, Filipčič A, Filipuzzi M, Filthaut F, Fincke-Keeler M, Finelli K, Fiolhais M, Fiorini L, Firan A, Fischer A, Fischer J, Fisher W, Fitzgerald E, Flechl M, Fleck I, Fleischmann P, Fleischmann S, Fletcher G, Fletcher G, Flick T, Floderus A, Flores Castillo L, Florez Bustos A, Flowerdew M, Formica A, Forti A, Fortin D, Fournier D, Fox H, Fracchia S, Francavilla P, Franchini M, Franchino S, Francis D, Franconi L, Franklin M, Franz S, Fraternali M, French S, Friedrich C, Friedrich F, Froidevaux D, Frost J, Fukunaga C, Fullana Torregrosa E, Fulsom B, Fuster J, Gabaldon C, Gabizon O, Gabrielli A, Gabrielli A, Gadatsch S, Gadomski S, Gagliardi G, Gagnon P, Galea C, Galhardo B, Gallas E, Gallo V, Gallop B, Gallus P, Galster G, Gan K, Gao J, Gao Y, Garay Walls F, Garberson F, García C, García Navarro J, Garcia-Sciveres M, Gardner R, Garelli N, Garonne V, Gatti C, Gaudio G, Gaur B, Gauthier L, Gauzzi P, Gavrilenko I, Gay C, Gaycken G, Gazis E, Ge P, Gecse Z, Gee C, Geerts D, Geich-Gimbel C, Gellerstedt K, Gemme C, Gemmell A, Genest M, Gentile S, George M, George S, Gerbaudo D, Gershon A, Ghazlane H, Ghodbane N, Giacobbe B, Giagu S, Giangiobbe V, Giannetti P, Gianotti F, Gibbard B, Gibson S, Gilchriese M, Gillam T, Gillberg D, Gilles G, Gingrich D, Giokaris N, Giordani M, Giordano R, Giorgi F, Giorgi F, Giraud P, Giugni D, Giuliani C, Giulini M, Gjelsten B, Gkaitatzis S, Gkialas I, Gladilin L, Glasman C, Glatzer J, Glaysher P, Glazov A, Glonti G, Goblirsch-Kolb M, Goddard J, Godfrey J, Godlewski J, Goeringer C, Goldfarb S, Golling T, Golubkov D, Gomes A, Gomez Fajardo L, Gonçalo R, Goncalves Pinto Firmino Da Costa J, Gonella L, González de la Hoz S, Gonzalez Parra G, Gonzalez-Sevilla S, Goossens L, Gorbounov P, Gordon H, Gorelov I, Gorini B, Gorini E, Gorišek A, Gornicki E, Goshaw A, Gössling C, Gostkin M, Gouighri M, Goujdami D, Goulette M, Goussiou A, Goy C, Gozpinar S, Grabas H, Graber L, Grabowska-Bold I, Grafström P, Grahn KJ, Gramling J, Gramstad E, Grancagnolo S, Grassi V, Gratchev V, Gray H, Graziani E, Grebenyuk O, Greenwood Z, Gregersen K, Gregor I, Grenier P, Griffiths J, Grillo A, Grimm K, Grinstein S, Gris P, Grishkevich Y, Grivaz JF, Grohs J, Grohsjean A, Gross E, Grosse-Knetter J, Grossi G, Groth-Jensen J, Grout Z, Guan L, Guescini F, Guest D, Gueta O, Guicheney C, Guido E, Guillemin T, Guindon S, Gul U, Gumpert C, Gunther J, Guo J, Gupta S, Gutierrez P, Gutierrez Ortiz N, Gutschow C, Guttman N, Guyot C, Gwenlan C, Gwilliam C, Haas A, Haber C, Hadavand H, Haddad N, Haefner P, Hageböck S, Hajduk Z, Hakobyan H, Haleem M, Hall D, Halladjian G, Hamacher K. Measurement of the Higgs boson mass from the H→γγand H→ZZ*→4ℓchannels in ppcollisions at center-of-mass energies of 7 and 8 TeV with the ATLAS detector. Int J Clin Exp Med 2014. [DOI: 10.1103/physrevd.90.052004] [Citation(s) in RCA: 155] [Impact Index Per Article: 14.1] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/06/2022]
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Nishino I, Noguchi S, Murayama K, Driss A, Sugie K, Oya Y, Nagata T, Chida K, Takahashi T, Takusa Y, Ohi T, Nishimiya J, Sunohara N, Ciafaloni E, Kawai M, Aoki M, Nonaka I. Distal myopathy with rimmed vacuoles is allelic to hereditary inclusion body myopathy. Neurology 2002; 59:1689-93. [PMID: 12473753 DOI: 10.1212/01.wnl.0000041631.28557.c6] [Citation(s) in RCA: 151] [Impact Index Per Article: 6.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/15/2022] Open
Abstract
BACKGROUND Distal myopathy with rimmed vacuoles (DMRV) is an autosomal-recessive disorder with preferential involvement of the tibialis anterior muscle that starts in young adulthood and spares quadriceps muscles. The disease locus has been mapped to chromosome 9p1-q1, the same region as the hereditary inclusion body myopathy (HIBM) locus. HIBM was originally described as rimmed vacuole myopathy sparing the quadriceps; therefore, the two diseases have been suspected to be allelic. Recently, HIBM was shown to be associated with the mutations in the gene encoding the bifunctional enzyme, UDP-N-acetylglucosamine 2-epimerase/N-acetylmannosamine kinase (GNE). OBJECTIVE To determine whether DMRV and HIBM are allelic. METHODS The GNE gene was sequenced in 34 patients with DMRV. The epimerase activity in lymphocytes from eight DMRV patients was also measured. RESULTS The authors identified 27 unrelated DMRV patients with homozygous or compound-heterozygous mutations in the GNE gene. DMRV patients had markedly decreased epimerase activity. CONCLUSIONS DMRV is allelic to HIBM. Various mutations are associated with DMRV in Japan. The loss-of-function mutations in the GNE gene appear to cause DMRV/HIBM.
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Taniyama Y, Morishita R, Aoki M, Nakagami H, Yamamoto K, Yamazaki K, Matsumoto K, Nakamura T, Kaneda Y, Ogihara T. Therapeutic angiogenesis induced by human hepatocyte growth factor gene in rat and rabbit hindlimb ischemia models: preclinical study for treatment of peripheral arterial disease. Gene Ther 2001; 8:181-9. [PMID: 11313789 DOI: 10.1038/sj.gt.3301379] [Citation(s) in RCA: 150] [Impact Index Per Article: 6.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/22/2000] [Accepted: 10/25/2000] [Indexed: 11/09/2022]
Abstract
Hepatocyte growth factor (HGF) exclusively stimulates the growth of endothelial cells without replication of vascular smooth muscle cells, and acts as a survival factor against endothelial cell death. Recently, a novel therapeutic strategy for ischemic diseases using angiogenic growth factors to expedite and/or augment collateral artery development has been proposed. We have previously reported that intra-arterial administration of recombinant HGF induced angiogenesis in a rabbit hindlimb ischemia model. In this study, we examined the feasibility of gene therapy using HGF to treat peripheral arterial disease rather than recombinant therapy, due to its disadvantages. Initially, we examined the transfection of 'naked' human HGF plasmid into a rat hindlimb ischemia model. Intramuscular injection of human HGF plasmid resulted in a significant increase in blood flow as assessed by laser Doppler imaging, accompanied by the detection of human HGF protein. A significant increase in capillary density was found in rats transfected with human HGF as compared with control vector, in a dose-dependent manner (P < 0.01). Importantly, at 5 weeks after transfection, the degree of angiogenesis induced by transfection of HGF plasmid was significantly greater than that caused by a single injection of recombinant HGF. As an approach to human gene therapy, we also employed a rabbit hindlimb ischemia model as a preclinical study. Naked HGF plasmid was intramuscularly injected in the ischemic hindlimb of rabbits, to evaluate its angiogenic activity. Intramuscular injection of HGF plasmid once on day 10 after surgery produced significant augmentation of collateral vessel development on day 30 in the ischemia model, as assessed by angiography (P < 0.01). Serial angiograms revealed progressive linear extension of collateral arteries from the origin stem artery to the distal point of the reconstituted parent vessel in HGF-transfected animals. In addition, a significant increase in blood flow was assessed by a Doppler flow wire and the ratio in blood pressure of the ischemic limb to the normal limb was observed in rabbits transfected with HGF plasmid as compared with rabbits transfected with control vector (P < 0.01). Overall, intramuscular injection of naked human HGF plasmid induced therapeutic angiogenesis in rat and rabbit ischemic hindlimb models, as potential therapy for peripheral arterial disease.
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Aoki M, Ogasawara M, Matsubara Y, Narisawa K, Nakamura S, Itoyama Y, Abe K. Mild ALS in Japan associated with novel SOD mutation. Nat Genet 1993; 5:323-4. [PMID: 8298637 DOI: 10.1038/ng1293-323] [Citation(s) in RCA: 145] [Impact Index Per Article: 4.5] [Reference Citation Analysis] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/29/2023]
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Aoki M, Hecht A, Kruse U, Kemler R, Vogt PK. Nuclear endpoint of Wnt signaling: neoplastic transformation induced by transactivating lymphoid-enhancing factor 1. Proc Natl Acad Sci U S A 1999; 96:139-44. [PMID: 9874785 PMCID: PMC15106 DOI: 10.1073/pnas.96.1.139] [Citation(s) in RCA: 142] [Impact Index Per Article: 5.5] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Accepted: 11/16/1998] [Indexed: 12/22/2022] Open
Abstract
The interaction between beta-catenin and LEF-1/TCF transcription factors plays a pivotal role in the Wnt-1 signaling pathway. The level of beta-catenin is regulated by partner proteins, including glycogen synthase kinase-3beta (GSK-3beta) and the adenomatous polyposis coli (APC) tumor suppressor protein. Genetic defects in APC are responsible for a heritable predisposition to colon cancer. APC protein and GSK-3beta bind beta-catenin, retain it in the cytoplasm, and facilitate the proteolytic degradation of beta-catenin. Abrogation of this negative regulation allows beta-catenin to translocate to the nucleus and to form a transcriptional activator complex with the DNA-binding protein lymphoid-enhancing factor 1 (LEF-1). This complex is thought to be involved in tumorigenesis. Here we show that covalent linkage of LEF-1 to beta-catenin and to transcriptional activation domains derived from the estrogen receptor or the herpes simplex virus protein VP16 generates transcriptional regulators that induce oncogenic transformation of chicken embryo fibroblasts. The chimeras between LEF-1 and beta-catenin or VP16 are constitutively active, whereas fusions of LEF-1 to the estrogen receptor are regulatable by estrogen. These experiments document the oncogenicity of transactivating LEF-1 and show that the transactivation domain normally provided by beta-catenin can be replaced by heterologous activation domains. These results suggest that the transactivating function of the LEF-1/beta-catenin complex is critical for tumorigenesis and that this complex transforms cells by activating specific LEF-1 target genes.
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