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Plant 22-nt siRNAs mediate translational repression and stress adaptation 期刊论文
NATURE, 2020, 581 (7806) : 89-+
作者:  Roulis, Manolis;  Kaklamanos, Aimilios;  Schernthanner, Marina;  Bielecki, Piotr;  Zhao, Jun;  Kaffe, Eleanna;  Frommelt, Laura-Sophie;  Qu, Rihao;  Knapp, Marlene S.;  Henriques, Ana;  Chalkidi, Niki;  Koliaraki, Vasiliki;  Jiao, Jing;  Brewer, J. Richard;  Bacher, Maren;  Blackburn, Holly N.;  Zhao, Xiaoyun;  Breyer, Richard M.;  Aidinis, Vassilis;  Jain, Dhanpat;  Su, Bing;  Herschman, Harvey R.;  Kluger, Yuval;  Kollias, George;  Flavell, Richard A.
收藏  |  浏览/下载:32/0  |  提交时间:2020/07/03

Characterization of 22-nucleotide short interfering RNAs in plants finds that they accumulate in response to environmental stress, causing translational repression, inhibition of plant growth and enhanced stress responses.


Small interfering RNAs (siRNAs) are essential for proper development and immunity in eukaryotes(1). Plants produce siRNAs with lengths of 21, 22 or 24 nucleotides. The 21- and 24-nucleotide species mediate cleavage of messenger RNAs and DNA methylation(2,3), respectively, but the biological functions of the 22-nucleotide siRNAs remain unknown. Here we report the identification and characterization of a group of endogenous 22-nucleotide siRNAs that are generated by the DICER-LIKE 2 (DCL2) protein in plants. When cytoplasmic RNA decay and DCL4 are deficient, the resulting massive accumulation of 22-nucleotide siRNAs causes pleiotropic growth disorders, including severe dwarfism, meristem defects and pigmentation. Notably, two genes that encode nitrate reductases-NIA1 and NIA2-produce nearly half of the 22-nucleotide siRNAs. Production of 22-nucleotide siRNAs triggers the amplification of gene silencing and induces translational repression both gene specifically and globally. Moreover, these 22-nucleotide siRNAs preferentially accumulate upon environmental stress, especially those siRNAs derived from NIA1/2, which act to restrain translation, inhibit plant growth and enhance stress responses. Thus, our research uncovers the unique properties of 22-nucleotide siRNAs, and reveals their importance in plant adaptation to environmental stresses.


  
The fate of carbon in a mature forest under carbon dioxide enrichment 期刊论文
NATURE, 2020, 580 (7802) : 227-+
作者:  Sun, P. Z.;  Yang, Q.;  Kuang, W. J.;  Stebunov, Y. V.;  Xiong, W. Q.;  Yu, J.;  Nair, R. R.;  Katsnelson, M. I.;  Yuan, S. J.;  Grigorieva, I. V.;  Lozada-Hidalgo, M.;  Wang, F. C.;  Geim, A. K.
收藏  |  浏览/下载:70/0  |  提交时间:2020/05/13

Carbon dioxide enrichment of a mature forest resulted in the emission of the excess carbon back into the atmosphere via enhanced ecosystem respiration, suggesting that mature forests may be limited in their capacity to mitigate climate change.


Atmospheric carbon dioxide enrichment (eCO(2)) can enhance plant carbon uptake and growth(1-5), thereby providing an important negative feedback to climate change by slowing the rate of increase of the atmospheric CO2 concentration(6). Although evidence gathered from young aggrading forests has generally indicated a strong CO2 fertilization effect on biomass growth(3-5), it is unclear whether mature forests respond to eCO(2) in a similar way. In mature trees and forest stands(7-10), photosynthetic uptake has been found to increase under eCO(2) without any apparent accompanying growth response, leaving the fate of additional carbon fixed under eCO(2) unclear(4,5,7-11). Here using data from the first ecosystem-scale Free-Air CO2 Enrichment (FACE) experiment in a mature forest, we constructed a comprehensive ecosystem carbon budget to track the fate of carbon as the forest responded to four years of eCO(2) exposure. We show that, although the eCO(2) treatment of +150 parts per million (+38 per cent) above ambient levels induced a 12 per cent (+247 grams of carbon per square metre per year) increase in carbon uptake through gross primary production, this additional carbon uptake did not lead to increased carbon sequestration at the ecosystem level. Instead, the majority of the extra carbon was emitted back into the atmosphere via several respiratory fluxes, with increased soil respiration alone accounting for half of the total uptake surplus. Our results call into question the predominant thinking that the capacity of forests to act as carbon sinks will be generally enhanced under eCO(2), and challenge the efficacy of climate mitigation strategies that rely on ubiquitous CO2 fertilization as a driver of increased carbon sinks in global forests.


  
Alpine grassland plants grow earlier and faster but biomass remains unchanged over 35 years of climate change 期刊论文
ECOLOGY LETTERS, 2020, 23 (4) : 701-710
作者:  Wang, Hao;  Liu, Huiying;  Cao, Guangmin;  Ma, Zhiyuan;  Li, Yikang;  Zhang, Fawei;  Zhao, Xia;  Zhao, Xinquan;  Jiang, Lin;  Sanders, Nathan J.;  Classen, Aimee T.;  He, Jin-Sheng
收藏  |  浏览/下载:5/0  |  提交时间:2020/07/02
alpine grassland  biomass production  climate warming  ecosystem function  functional group composition  phenology  plant growth  the Tibetan Plateau  
Long-term effects of environmental change and species diversity on tree radial growth in a mixed European forest 期刊论文
FOREST ECOLOGY AND MANAGEMENT, 2019, 446: 293-303
作者:  Bosela, Michal;  Kulla, Ladislav;  Roessiger, Joerg;  Seben, Vladimir;  Dobor, Laura;  Buntgen, Ulf;  Lukac, Martin
收藏  |  浏览/下载:8/0  |  提交时间:2019/11/27
Atmospheric pollution  Climate warming  Drought stress  European forests  Plant-climate interactions  Species diversity  Tree growth  
Resource allocation to growth or luxury consumption drives mycorrhizal responses 期刊论文
ECOLOGY LETTERS, 2019, 22 (11) : 1757-1766
作者:  Riley, Rohan C.;  Cavagnaro, Timothy R.;  Brien, Chris;  Smith, F. Andrew;  Smith, Sally E.;  Berger, Bettina;  Garnett, Trevor;  Stonor, Rebecca;  Schilling, Rhiannon K.;  Chen, Zhong-Hua;  Powell, Jeff R.
收藏  |  浏览/下载:8/0  |  提交时间:2019/11/27
Biodiversity  competition  ecosystem function  functional traits  growth strategy  plant-microbe interactions  
Response of maize biomass and soil water fluxes on elevated CO2 and drought-From field experiments to process-based simulations 期刊论文
GLOBAL CHANGE BIOLOGY, 2019, 25 (9) : 2947-2957
作者:  Kellner, Juliane;  Houska, Tobias;  Manderscheid, Remy;  Weigel, Hans-Joachim;  Breuer, Lutz;  Kraft, Philipp
收藏  |  浏览/下载:22/0  |  提交时间:2019/11/27
CO2 response  coupled hydrological-plant growth model  evaporation  free-air carbon dioxide enrichment  transpiration  Zea mays  
Habitat fragmentation reduces plant progeny quality: a global synthesis 期刊论文
ECOLOGY LETTERS, 2019, 22 (7) : 1163-1173
作者:  Aguilar, Ramiro;  Jacob Cristobal-Perez, Edson;  Balvino-Olvera, Francisco Javier;  Aguilar-Aguilar, Maria de Jesus;  Aguirre-Acosta, Natalia;  Ashworth, Lorena;  Lobo, Jorge A.;  Marten-Rodriguez, Silvana;  Fuchs, Eric J.;  Sanchez-Montoya, Gumersindo;  Bernardello, Gabriel;  Quesada, Mauricio
收藏  |  浏览/下载:9/0  |  提交时间:2019/11/27
Genetic diversity  germination  growth  inbreeding  mating patterns  offspring performance  plant-pollination interactions  progeny vigour  seedling  sexual plant reproduction  survival  
Effect of nitrogen addition and litter removal on understory vegetation, soil mesofauna, and litter decomposition in loblolly pine plantations in subtropical Argentina 期刊论文
FOREST ECOLOGY AND MANAGEMENT, 2018, 429: 133-142
作者:  Trentini, C. P.;  Villagra, M.;  Gomez Pamies, D.;  Bernava Laborde, V;  Bedano, J. C.;  Campanello, P., I
收藏  |  浏览/下载:5/0  |  提交时间:2019/04/09
Atlantic forest  Ecological function  Plant growth form  Native tree regeneration  Collembola  
Precipitation frequency alters peatland ecosystem structure and CO2 exchange: Contrasting effects on moss, sedge, and shrub communities 期刊论文
GLOBAL CHANGE BIOLOGY, 2018, 24 (5) : 2051-2065
作者:  Radu, Danielle D.;  Duval, Tim P.
收藏  |  浏览/下载:7/0  |  提交时间:2019/04/09
carbon  climate change  drought  fen  peatland  plant growth  rainfall frequency  soil moisture  
Differentiating drought legacy effects on vegetation growth over the temperate Northern Hemisphere 期刊论文
GLOBAL CHANGE BIOLOGY, 2018, 24 (1) : 504-516
作者:  Wu, Xiuchen;  Liu, Hongyan;  Li, Xiaoyan;  Ciais, Philippe;  Babst, Flurin;  Guo, Weichao;  Zhang, Cicheng;  Magliulo, Vincenzo;  Pavelka, Marian;  Liu, Shaomin;  Huang, Yongmei;  Wang, Pei;  Shi, Chunming;  Ma, Yujun
收藏  |  浏览/下载:16/0  |  提交时间:2019/04/09
drought legacy effect  drought resilience  ecohydrological responses  extreme drought  plant functional groups  rooting system  stomatal conductance  vegetation growth