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| 1 | PREDICTION OF YIELD FUNCTIONS ON BCC POLYCRYSTALS显示文摘由非线性的优化理论,我们在希尔的标准形式预言单个电子消息传输方式晶体的收益功能。然后,我们在 Sach 的模型下面在电子消息传输方式多晶体Ω的宏观的收益功能上给一个公式,在在Ω的所有 BCCcrystallites 的收益功能的体积一般水准作为 BCC 多晶体的宏观的收益功能被拿的地方。Inconstructing 公式,我们试着在宏观的收益功能,取向分发功能(ODF ) ,和单个电子消息传输方式之中发现关系水晶的粘性。为一个单轴的张力的问题的收益压力的一个表达式在泰勒的模型下面被导出以便把表达式与宏观的收益函数的作比较。 | Huang Mojia Fu Mingfu Zheng Chaomei | 2006 | Acta Mechanica Solida Sinica2006,19,1: | 5 |
| 2 | Removal of naphthenic acid by microwave显示文摘 | Huang Mingfu Zhan Shanlin Li Ping | 2006 | J Clean Prod2006,14,8: | 1 |
| 3 | High performance biodegradable thermoplastic starch--EMMT nanoplastics 显示文摘 | Huang Mingfu Yu Jiugao Ma Xiaofei | 2005 | Polymer2005,46,: | 1 |
| 4 | Spontaneous movement of a retrotransposon generated genic dominant male sterility providing a useful tool for rice breeding显示文摘Male sterility in plants provides valuable breeding tools in germplasm innovation and hybrid crop production.However,genetic resources for dominant genic male sterility,which hold great promise to facilitate breeding processes,are extremely rare in natural germplasm.Here we characterized the Sanming Dominant Genic Male Sterility in rice and identified the gene SDGMS using a map-based cloning approach.We found that spontaneous movement of a 1978-bp long terminal repeat(LTR)retrotransposon into the promoter region of the SDGMS gene activates its expression in anther tapetum,which causes abnormal programmed cell death of tapetal cells resulting in dominant male sterility.SDGMS encodes a ribosome inactivating protein showing N-glycosidase activity.The activation of SDGMS triggers transcription reprogramming of genes responsive to biotic stress leading to a hypersensitive response which causes sterility.The results demonstrate that an ectopic gene activation by transposon movement can give birth to a novel trait which enriches phenotypic diversity with practical utility. | Conghao Xu Yifeng Xu Zhengji Wang Xiaoyu Zhang Yuying Wu Xinyan Lu Hongwei Sun Lei Wang Qinglu Zhang Qinghua Zhang Xianghua Li Jinghua Xiao Xu Li Mingfu Zhao Yidan Ouyang Xianbo Huang Qifa Zhang | 2023 | National Science Review2023,10,9: | 1 |
| 5 | High performance biodegradable thermoplastic starch EMMT nanoplastics显示文摘 | Huang Mingfu Yu Jiugao Ma Xiaofei | 2005 | Polymer2005,,46: | 1 |
| 6 | High Per- formance Biodegradable Thermoplastic Starch/EMMT Nanoplastics显示文摘 | Huang Mingfu Yu Jiugao Ma Xiaofei | 2005 | Polymer2005,46,9: | 1 |
| 7 | Studies on the properties of Montmorillonite-reinforced thermoplastic starch composites 显示文摘 | HUANG Mingfu YU Jiugao MA Xiaofen | 2004 | Polymer2004,45,: | 1 |
| 8 | High performance biodegradable thermoplastic starch-EMMT nanoplastics 显示文摘 | HUANG Mingfu YU Jiugao MA Xiaofen | 2005 | Polymer2005,46,: | 1 |
| 9 | Structure and properties of thermoplastic corn starch/montmorillonite biodegradable composites显示文摘 | HUANG Mingfu YU Jiugao | 2006 | J Appl Polym Sci2006,99,: | 1 |
| 10 | High performance biodegradable thermoplastic starch-EMMT nanoplastics显示文摘 | Huang Mingfu Yu Jiugao Ma Xiaofei | 2005 | Polymer2005,46,9: | 1 |
| 11 | Structure and properties of thermoplastic corn starch/MMT biodegradable composites显示文摘 | Huang Mingfu Yu Jiugao | 2006 | Journal of Apllied Polymer Science2006,99,: | 1 |
| 12 | HIF-1α promotes SARS-CoV-2 infection and aggravates inflammatory responses to COVID-19显示文摘Cytokine storm induced by Severe Acute Respiratory Syndrome Coronavirus 2(SARS-CoV-2)is a major pathological feature of Coronavirus Disease 2019(COVID-19)and a crucial determinant in COVID-19 prognosis.Understanding the mechanism underlying the SARS-CoV-2-induced cytokine storm is critical for COVID-19 control.Here,we identify that SARS-CoV-2 ORF3a and host hypoxia-inducible factor-1α(HIF-1α)play key roles in the virus infection and pro-inflammatory responses. | Mingfu Tian Weiyong Liu Xiang Li Peiyi Zhao Muhammad Adnan Shereen Chengliang Zhu Shanyu Huang Siyu Liu Xiao Yu Miaomiao Yue Pan Pan Wenbiao Wang Yongkui Li Xulin Chen Kailang Wu Zhen Luo Qiwei Zhang Jianguo Wu | 2021 | Signal Transduction and Targeted Therapy2021,6,9: | 1 |
| 13 | Studies on the properties of montmorillonite-reinforced thermoplastic starch composites显示文摘 | HUANG Mingfu YU Jiugao MA Xiaofei | 2004 | Polymer2004,45,20: | 1 |
| 14 | Removal of naphthenie acid by microwave显示文摘 | Mingfu Huang Shanlin Zhao Ping Li | 2006 | Journal of Cleaner Production2006,14,8: | 1 |
| 15 | Super-assembled highly compressible and flexible cellulose aerogels for methylene blue removal from water显示文摘Physical adsorption is a common method to solve the contamination of methylene blue in dyeing wastewater.As a kind of adsorption material,cellulose aerogels with high porosity and surface areas have great potential application in methylene blue removal.However,the week hydrogen bonding between cellulose nanofibers making the cellulose aerogels with the poor mechanical properties and can be easily destroyed during adsorption.Hence,the preparation of cellulose aerogels with high mechanical strength is still a great challenge.Here,we report a robust super-assembly strategy to fabricate cellulose aerogels by combining cellulose nanofibers with PVA and M-K10.The resulting cellulose aerogels not only has a robust chemically cross-linked network,but also has strong H-bonds,which greatly enhance the mechanical properties.The resulting cellulose aerogels possess a low density of 19.32 mg/cm^(3).Furthermore,the cellulose aerogel shows 93%shape recovery under 60%strain(9.5 k Pa under 60%strain)after 100 cycles,showing excellent mechanical property.The adsorption capacity of cellulose aerogel to methylene blue solution of 20 mg/L is 2.28 mg/g and the adsorption kinetics and adsorption isotherms have also been studied.Pseudo-second-order kinetic model and Freundlich isotherm model are more acceptable for indicating the adsorption process of methylene blue on the cellulose aerogel.Thus,this compressible and durable cellulose aerogel is a very prospective material for dyeing wastewater cleanup. | Mingfu Luo Meng Wang Huaipeng Pang Runhao Zhang Jing Huang Kang Liang Pu Chen Peipei Sun Biao Kong | 2021 | Chinese Chemical Letters2021,32,6: | 1 |