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本文引用的文献

1
The Arabidopsis Plastidial Glucose-6-Phosphate Transporter GPT1 is Dually Targeted to Peroxisomes via the Endoplasmic Reticulum.拟南芥质体葡萄糖-6-磷酸转运蛋白 GPT1 通过内质网双重靶向过氧化物酶体。
Plant Cell. 2020 May;32(5):1703-1726. doi: 10.1105/tpc.19.00959. Epub 2020 Feb 28.
2
Plasma Membrane Domain Patterning and Self-Reinforcing Polarity in Arabidopsis.质膜域的模式形成和拟南芥的自我增强极性。
Dev Cell. 2020 Jan 27;52(2):223-235.e5. doi: 10.1016/j.devcel.2019.11.015. Epub 2019 Dec 19.
3
Regulation of pollen lipid body biogenesis by MAP kinases and downstream WRKY transcription factors in Arabidopsis.拟南芥中 MAP 激酶和下游 WRKY 转录因子对花粉脂体生物发生的调控。
PLoS Genet. 2018 Dec 26;14(12):e1007880. doi: 10.1371/journal.pgen.1007880. eCollection 2018 Dec.
4
Maternal auxin supply contributes to early embryo patterning in Arabidopsis.母体生长素供应有助于拟南芥早期胚胎的模式形成。
Nat Plants. 2018 Aug;4(8):548-553. doi: 10.1038/s41477-018-0204-z. Epub 2018 Jul 16.
5
Maternal control of embryogenesis by MPK6 and its upstream MKK4/MKK5 in Arabidopsis.拟南芥中 MPK6 及其上游 MKK4/MKK5 对胚胎发生的母体控制。
Plant J. 2017 Dec;92(6):1005-1019. doi: 10.1111/tpj.13737. Epub 2017 Nov 11.
6
The autonomous cell fate specification of basal cell lineage: the initial round of cell fate specification occurs at the two-celled proembryo stage.细胞自主命运特化:基底细胞谱系的最初一轮细胞命运特化发生在两细胞原胚阶段。
Plant J. 2017 Sep;91(6):1051-1063. doi: 10.1111/tpj.13629. Epub 2017 Aug 11.
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Disruption of morphogenesis and transformation of the suspensor in abnormal suspensor mutants of Arabidopsis.拟南芥异常胚柄突变体中形态发生的破坏及胚柄的转变
Development. 1994 Nov;120(11):3235-45. doi: 10.1242/dev.120.11.3235.
8
Metabolite transport and associated sugar signalling systems underpinning source/sink interactions.支撑源/库相互作用的代谢物转运及相关糖信号系统。
Biochim Biophys Acta. 2016 Oct;1857(10):1715-25. doi: 10.1016/j.bbabio.2016.07.007. Epub 2016 Jul 31.
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Source-Sink Communication: Regulated by Hormone, Nutrient, and Stress Cross-Signaling.源-库通讯:受激素、养分和胁迫交叉信号调控。
Trends Plant Sci. 2015 Dec;20(12):844-857. doi: 10.1016/j.tplants.2015.10.009. Epub 2015 Nov 18.
10
Direct evidence that suspensor cells have embryogenic potential that is suppressed by the embryo proper during normal embryogenesis.有直接证据表明,在正常胚胎发生过程中,胚柄细胞具有胚胎发生潜能,但受到胚体的抑制。
Proc Natl Acad Sci U S A. 2015 Oct 6;112(40):12432-7. doi: 10.1073/pnas.1508651112. Epub 2015 Sep 22.

质体定位的糖转运蛋白在悬浮胚柄中的表达对胚胎发生至关重要。

Expression of a plastid-localized sugar transporter in the suspensor is critical to embryogenesis.

机构信息

College of Plant Protection, The Key Laboratory of Plant Immunity, Nanjing Agriculture University, Nanjing 210095, China.

State Key Laboratory of Plant Physiology and Biochemistry, College of Life Sciences, Zhejiang University, Hangzhou 310058, China.

出版信息

Plant Physiol. 2021 Apr 2;185(3):1021-1038. doi: 10.1093/plphys/kiaa084.

DOI:10.1093/plphys/kiaa084
PMID:33793862
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8133565/
Abstract

Plant growth and development rely on sugar transport between source and sink cells and between different organelles. The plastid-localized sugar transporter GLUCOSE-6-PHOSPHATE TRANSLOCATER1 (GPT1) is an essential gene in Arabidopsis (Arabidopsis thaliana). Using a partially rescued gpt1 mutant and cell-specific RNAi suppression of GPT1, we demonstrated that GPT1 is essential to the function of the embryo suspensor and the development of the embryo. GPT1 showed a dynamic expression/accumulation pattern during embryogenesis. Inhibition of GPT1 accumulation via RNAi using a suspensor-specific promoter resulted in embryos and seedlings with defects similar to auxin mutants. Loss of function of GPT1 in the suspensor also led to abnormal/ectopic cell division in the lower part of the suspensor, which gave rise to an ectopic embryo, resulting in twin embryos in some seeds. Furthermore, loss of function of GPT1 resulted in vacuolar localization of PIN-FORMED1 (PIN1) and altered DR5 auxin activity. Proper localization of PIN1 on the plasma membrane is essential to polar auxin transport and distribution, a key determinant of pattern formation during embryogenesis. Our findings suggest that the function of GPT1 in the embryo suspensor is linked to sugar and/or hormone distribution between the embryo proper and the maternal tissues, and is important for maintenance of suspensor identity and function during embryogenesis.

摘要

植物的生长和发育依赖于源细胞和汇细胞之间以及不同细胞器之间的糖转运。质体定位的糖转运体 GLUCOSE-6-PHOSPHATE TRANSLOCATER1 (GPT1) 是拟南芥(Arabidopsis thaliana)中的一个必需基因。通过部分挽救的 gpt1 突变体和细胞特异性 RNAi 抑制 GPT1,我们证明 GPT1 对于胚胎悬浮胚的功能和胚胎的发育是必需的。GPT1 在胚胎发生过程中表现出动态的表达/积累模式。使用悬浮胚特异性启动子通过 RNAi 抑制 GPT1 的积累导致胚胎和幼苗出现类似于生长素突变体的缺陷。悬浮胚中 GPT1 的功能丧失也导致悬浮胚下部异常/异位细胞分裂,导致异位胚胎,导致一些种子中出现双胞胎胚胎。此外,GPT1 的功能丧失导致 PIN-FORMED1 (PIN1) 的液泡定位和改变的 DR5 生长素活性。PIN1 在质膜上的正确定位对于极性生长素运输和分布至关重要,这是胚胎发生过程中模式形成的关键决定因素。我们的发现表明,GPT1 在胚胎悬浮胚中的功能与胚胎本身和母体组织之间的糖和/或激素分布有关,对于维持胚胎发生过程中悬浮胚的身份和功能很重要。