👤 Kenji Onoue

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Articles
articles
Yu Masutani, Kenji Onoue, Tsunenari Soeda +8 more · 2026 · JACC. Case reports · Elsevier · added 2026-04-24
Apolipoprotein A-IV amyloidosis (AApoA-Ⅳ) is a rare subtype of cardiac amyloidosis (CA) and is often overlooked because of its clinical similarity to transthyretin (ATTR) CA. An 82-year-old man presen Show more
Apolipoprotein A-IV amyloidosis (AApoA-Ⅳ) is a rare subtype of cardiac amyloidosis (CA) and is often overlooked because of its clinical similarity to transthyretin (ATTR) CA. An 82-year-old man presented with heart failure with preserved ejection fraction. His clinical features, including grade 1 uptake on Although the pathologic significance of the unique histologic features remains unclear, they may represent distinguishing characteristics of AApoA-IV amyloidosis. AApoA-IV CA typically presents with elderly-onset heart failure with preserved ejection fraction and may show positive uptake on bone scintigraphy. Differentiation from ATTR CA is possible based on characteristic histopathologic findings and mass spectrometry-based proteomic analysis. Show less
no PDF DOI: 10.1016/j.jaccas.2026.107355
APOA4
Takashige Tobita, Seitaro Nomura, Takanori Fujita +25 more · 2018 · Scientific reports · Nature · added 2026-04-24
Dilated cardiomyopathy (DCM) and hypertrophic cardiomyopathy (HCM) are genetically and phenotypically heterogeneous. Cardiac function is improved after treatment in some cardiomyopathy patients, but l Show more
Dilated cardiomyopathy (DCM) and hypertrophic cardiomyopathy (HCM) are genetically and phenotypically heterogeneous. Cardiac function is improved after treatment in some cardiomyopathy patients, but little is known about genetic predictors of long-term outcomes and myocardial recovery following medical treatment. To elucidate the genetic basis of cardiomyopathy in Japan and the genotypes involved in prognosis and left ventricular reverse remodeling (LVRR), we performed targeted sequencing on 120 DCM (70 sporadic and 50 familial) and 52 HCM (15 sporadic and 37 familial) patients and integrated their genotypes with clinical phenotypes. Among the 120 DCM patients, 20 (16.7%) had TTN truncating variants and 13 (10.8%) had LMNA variants. TTN truncating variants were the major cause of sporadic DCM (21.4% of sporadic cases) as with Caucasians, whereas LMNA variants, which include a novel recurrent LMNA E115M variant, were the most frequent in familial DCM (24.0% of familial cases) unlike Caucasians. Of the 52 HCM patients, MYH7 and MYBPC3 variants were the most common (12 (23.1%) had MYH7 variants and 11 (21.2%) had MYBPC3 variants) as with Caucasians. DCM patients harboring TTN truncating variants had better prognosis than those with LMNA variants. Most patients with TTN truncating variants achieved LVRR, unlike most patients with LMNA variants. Show less
no PDF DOI: 10.1038/s41598-018-20114-9
MYBPC3
Jianming Jiang, Patrick G Burgon, Hiroko Wakimoto +8 more · 2015 · Proceedings of the National Academy of Sciences of the United States of America · National Academy of Sciences · added 2026-04-24
Homozygous cardiac myosin binding protein C-deficient (Mybpc(t/t)) mice develop dramatic cardiac dilation shortly after birth; heart size increases almost twofold. We have investigated the mechanism o Show more
Homozygous cardiac myosin binding protein C-deficient (Mybpc(t/t)) mice develop dramatic cardiac dilation shortly after birth; heart size increases almost twofold. We have investigated the mechanism of cardiac enlargement in these hearts. Throughout embryogenesis myocytes undergo cell division while maintaining the capacity to pump blood by rapidly disassembling and reforming myofibrillar components of the sarcomere throughout cell cycle progression. Shortly after birth, myocyte cell division ceases. Cardiac MYBPC is a thick filament protein that regulates sarcomere organization and rigidity. We demonstrate that many Mybpc(t/t) myocytes undergo an additional round of cell division within 10 d postbirth compared with their wild-type counterparts, leading to increased numbers of mononuclear myocytes. Short-hairpin RNA knockdown of Mybpc3 mRNA in wild-type mice similarly extended the postnatal window of myocyte proliferation. However, adult Mybpc(t/t) myocytes are unable to fully regenerate the myocardium after injury. MYBPC has unexpected inhibitory functions during postnatal myocyte cytokinesis and cell cycle progression. We suggest that human patients with homozygous MYBPC3-null mutations develop dilated cardiomyopathy, coupled with myocyte hyperplasia (increased cell number), as observed in Mybpc(t/t) mice. Human patients, with heterozygous truncating MYBPC3 mutations, like mice with similar mutations, have hypertrophic cardiomyopathy. However, the mechanism leading to hypertrophic cardiomyopathy in heterozygous MYBPC3(+/-) individuals is myocyte hypertrophy (increased cell size), whereas the mechanism leading to cardiac dilation in homozygous Mybpc3(-/-) mice is primarily myocyte hyperplasia. Show less
no PDF DOI: 10.1073/pnas.1511004112
MYBPC3