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光合作用戈登研究会议:从环境到合成系统的光合作用可塑性。

Gordon Research Conference on photosynthesis: photosynthetic plasticity from the environment to synthetic systems.

机构信息

School of Molecular Sciences, Arizona State University, Tempe, AZ, 85281, USA.

Department of Plant Biology, Carnegie Institution for Science, Stanford, CA, 94305, USA.

出版信息

Photosynth Res. 2018 Jun;136(3):393-405. doi: 10.1007/s11120-017-0472-x. Epub 2018 Jan 2.

DOI:10.1007/s11120-017-0472-x
PMID:29294241
Abstract

Here, we provide a summary of the 2017 Gordon Research Conference on Photosynthesis: "Photosynthetic plasticity: from the environment to synthetic systems". This conference was held at the Grand Summit Resort Hotel at Sunday River, Newry, Maine, USA, from July 16 to 21, 2017. We have also included here a brief description of the Gordon Research Seminar (for students and post-docs) held during 2 days preceding this conference. Following the conclusion of the conference's scientific program, four young scientists (Han Bao, Vivek Tiwari, Setsuko Wakao, and Usha Lingappa) were recognized for their research presentations, each of whom received a book as a gift from one of us (Govindjee). Having chaired the 2015 Gordon Research Conference on Photosynthesis in 2015, Fabrice Rappaport, who lost his fight against cancer in January 2016, was remembered for his profound impact on the field of photosynthesis research.

摘要

在这里,我们提供了 2017 年光合作用戈登研究会议的摘要:“光合作用的可塑性:从环境到合成系统”。该会议于 2017 年 7 月 16 日至 21 日在美国缅因州新里利的大山顶度假村酒店举行。我们还在这里简要介绍了在该会议前两天举行的戈登研究研讨会(面向学生和博士后)。在会议的科学计划结束后,四位年轻科学家(Han Bao、Vivek Tiwari、Setsuko Wakao 和 Usha Lingappa)因其研究报告而受到表彰,他们每人都收到了我们中的一位(Govindjee)赠送的一本书。Fabrice Rappaport 曾于 2015 年主持 2015 年光合作用戈登研究会议,他于 2016 年 1 月因癌症去世,他对光合作用研究领域产生了深远的影响,因此在会议上被人们怀念。

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蓝藻光保护系统中橙色类胡萝卜素蛋白的更多家族。
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Gordon research conference on the dynamics and regulation of photosynthesis: from the origin of bio-catalysis to innovative solar conversion.戈登光合作用动力学与调控研究会议:从生物催化的起源到创新的太阳能转换
Photosynth Res. 2016 Mar;127(3):379-89. doi: 10.1007/s11120-015-0187-9.
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Large-scale insertional mutagenesis of Chlamydomonas supports phylogenomic functional prediction of photosynthetic genes and analysis of classical acetate-requiring mutants.大规模插入突变的衣藻支持光合基因的系统发育功能预测和经典依赖乙酸盐突变体的分析。
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