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17篇 您的检索式:作者名="Utako"
    题名 作者 年代 出处 被引量
1The Pib gene for rice blast resistance belongs to the nueleo- tide binding and leueine-rieh repeat class of plant disease re- sistance gene显示文摘Zi-Xuan Wang Masahiro Yano Utako Yamanouehi 1999The Plant Journal1999,19,1:1
2al Functional Characterization of LMXlBMutations Associated with Nail-Patella Syndrome显示文摘Utako Sato Sachiko Kitanaka Takashi Sekine et 2005Pediatric Research2005,57,6:1
3The Pib gene for rice blast resistance belongs to the nucleotide binding and leucine-rich repeat class of plant disease resistance genes 显示文摘Wang Zixuan Yano Masahiro Utako Yamanouchi 1999The Plant Journal1999,19,1:1
4Real- time automated PCR for early diagnose and monitoring of cytomegalovirus infection after bone marrow transplantation显示文摘 MASAHIRO K RAKAFUMI T 2000Journal of Clinical Microbiology2000,38,7:1
5A rice spotted leaf gene, Sp17, encodes a heat stress transcription factor protein显示文摘UTAKO YAMANOUCHI MASAHIRO YANO LIN H X 2002PNAS2002,99,11:1
6Characterization of common cis-regulatory elements responsible for the endosperm-specific expression of members of the rice glutelin multigene family显示文摘Fumio Takaiwa Utako Yamanouchi Toshihiro Yoshihara Haruhiko Washida Fumio Tanabe Akira Kato Kyouji Yamada 1996Plant Molecular Biology1996,,6:1
7Changes in apraxia after deep brain stimulation of the nucleus basalis Meynert in a patient with Parkinson dementia syndrome显示文摘Thomas T.Barnikol Norbert B. A.Pawelczyk Utako B.Barnikol JensKuhn DorisLenartz VolkerSturm Peter A.Tass Hans‐JoachimFreund 2010Mov. Disord2010,,:1
8Expression of Xa1, a bacterial blight-resistance gene in rice, is induced by bacterial inoculation 显示文摘 UTAKO Y YUICHI K 1998Proc Natl Acad Sci USA1998,95,4:1
9Linoleic acid,other fatty acids,and the risk of stroke显示文摘Hiroyasu I Shinichi S Utako U 2002Stroke2002,33,:1
10Expression of the Pib rice-blast-resistance gene family is up-regulated by environmental conditions favouring infection and by chemical signals that trigger secondary plant defences显示文摘Zi-Xuan Wang Utako Yamanouchi Yuichi Katayose Takuji Sasaki Masahiro Yano 2001Plant Molecular Biology2001,,5:1
11Encoding of a cytochrome P450-dependentlauric acid monooxygenase by CYP703A1 specifically expressed in the the floral buds of petunia hybrida显示文摘 Yuka Matsumoto Utako Ishtobi 1999Biosci Biotechnol Biochem1999,63,12:1
12Expression of Xa\, a bacte-rial blight -resistance gene in rice,is induced by bacterial inocula-tion 显示文摘Satomi Y Utako Y Yuichi K 1998Proceedings of the National Academy of Sciences1998,95,:1
13Expression of Xal,a bacterial blight-resistance gene in rice,is induced by bacterial inoculation显示文摘Satomi Y Utako Y Yuichi K 1998Proc Natl Acad Sci USA1998,95,:1
14The Pib gene for rice blast resistance belongs to the nucleotide binding and leucine rich repeat class of plant disease resistance genes显示文摘Xuan Wang Masahiro Utako Yamanouchi 1999The Plant Journal1999,19,1:1
15Ehd2 ,a rice ortholog of the maize ID1 gene,promotes flowering by upregulating Ehdl显示文摘KAZUKI M UTAKO Y WANG Z X 2008Plant Physiology2008,,148:1
16H d16 , a gene for casein kinase I , is involved in the control of rice flowering time by modulating the day‐length response显示文摘Kiyosumi Hori Eri Ogiso‐Tanaka Kazuki Matsubara Utako Yamanouchi Kaworu Ebana Masahiro Yano 2013Plant J2013,,1:1
17Challenges and Possibilities of Cell-Based Tissue-Engineered Vascular Grafts显示文摘There is urgent demand for biologically compatible vascular grafts for both adult and pediatric patients.The utility of conventional nonbiodegradable materials is limited because of their thrombogenicity and inability to grow,while autologous vascular grafts involve considerable disadvantages,including the invasive procedures required to obtain these healthy vessels from patients and insufficient availability in patients with systemic atherosclerosis.All of these issues could be overcome by tissue-engineered vascular grafts(TEVGs).A large body of evidence has recently emerged in support of TEVG technologies,introducing diverse cell sources(e.g.,somatic cells and stem cells)and novel fabrication methods(e.g.,scaffold-guided and self-assembled approaches).Before TEVG can be applied in a clinical setting,however,several aspects of the technology must be improved,such as the feasibility of obtaining cells,their biocompatibility and mechanical properties,and the time needed for fabrication,while the safety of supplemented materials,the patency and nonthrombogenicity of TEVGs,their growth potential,and the long-term influence of implanted TEVGs in the body must be assessed.Although recent advances in TEVG fabrication have yielded promising results,more research is needed to achieve the most feasible methods for generating optimal TEVGs.This article reviews multiple aspects of TEVG fabrication,including mechanical requirements,extracellular matrix components,cell sources,and tissue engineering approaches.The potential of periodic hydrostatic pressurization in the production of scaffold-free TEVGs with optimal elasticity and stiffness is also discussed.In the future,the integration of multiple technologies is expected to enable improved TEVG performance.Junichi Saito Makoto Kaneko Yoshihiro Ishikawa Utako Yokoyama 2021Cyborg and Bionic Systems2021,,1:0
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