PSInet:一个新的全球水潜力网络。

IF 3.5 2区 农林科学 Q1 FORESTRY
Ana Maria Restrepo-Acevedo, Jessica S Guo, Steven A Kannenberg, Michael C Benson, Daniel Beverly, Renata Diaz, William R L Anderegg, Daniel M Johnson, George Koch, Alexandra G Konings, Lauren E L Lowman, Jordi Martínez-Vilalta, Rafael Poyatos, H Jochen Schenk, Ashley M Matheny, Katherine A McCulloh, Jesse B Nippert, Rafael S Oliveira, Kimberly Novick
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引用次数: 0

摘要

鉴于气候变化带来的紧迫挑战,深入了解不断升级的干旱和高温压力对陆地生态系统的影响及其提供的重要服务至关重要。土壤和植物水势在调节生态系统内部水分动态方面起着关键作用,并直接控制植物功能和生态胁迫期间的死亡风险。然而,现有的水势观测存在很大的局限性,包括观测数据的零散性和不连续性、对相关时空尺度的表述不一致,以及在方法学方面存在诸多挑战。这些局限性阻碍了我们开展所需的全面综合研究,从而无法加深对植物功能的概念性理解,也无法建立在有限水分供应条件下的植物生存预测模型。在本文中,我们介绍了 PSInet(PSI--希腊字母Ψ,用于表示水势),这是一个新颖的研究人员和数据合作网络,旨在弥合目前水势数据方面的关键信息差距。PSInet 的主要目标是(1) 建立第一个可公开访问的植物和土壤水势测量时间序列全球数据库,同时提供与其他相关观测网络的重要联系。(2) 为所有研究不同阶段水势的科学家营造一个包容和多样化的合作环境。(3) 通过全球科学家社区的参与,传播标准化规程、最佳实践和早期职业培训机会, 使水势数据的方法、处理和解释标准化。(4) 促进利用 PSInet 数据库综合知识,解决我们在了解植物对各种环境压力的生理反应方面存在的突出差距。在世界迅速变暖和日益干旱化的情况下,哪些植物物种将茁壮成长,哪些植物物种将变得脆弱,PSInet 计划是应对基本研究挑战不可或缺的一部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PSInet: a new global water potential network.

Given the pressing challenges posed by climate change, it is crucial to develop a deeper understanding of the impacts of escalating drought and heat stress on terrestrial ecosystems and the vital services they offer. Soil and plant water potential play a pivotal role in governing the dynamics of water within ecosystems and exert direct control over plant function and mortality risk during periods of ecological stress. However, existing observations of water potential suffer from significant limitations, including their sporadic and discontinuous nature, inconsistent representation of relevant spatio-temporal scales and numerous methodological challenges. These limitations hinder the comprehensive and synthetic research needed to enhance our conceptual understanding and predictive models of plant function and survival under limited moisture availability. In this article, we present PSInet (PSI-for the Greek letter Ψ used to denote water potential), a novel collaborative network of researchers and data, designed to bridge the current critical information gap in water potential data. The primary objectives of PSInet are as follows. (i) Establishing the first openly accessible global database for time series of plant and soil water potential measurements, while providing important linkages with other relevant observation networks. (ii) Fostering an inclusive and diverse collaborative environment for all scientists studying water potential in various stages of their careers. (iii) Standardizing methodologies, processing and interpretation of water potential data through the engagement of a global community of scientists, facilitated by the dissemination of standardized protocols, best practices and early career training opportunities. (iv) Facilitating the use of the PSInet database for synthesizing knowledge and addressing prominent gaps in our understanding of plants' physiological responses to various environmental stressors. The PSInet initiative is integral to meeting the fundamental research challenge of discerning which plant species will thrive and which will be vulnerable in a world undergoing rapid warming and increasing aridification.

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来源期刊
Tree physiology
Tree physiology 农林科学-林学
CiteScore
7.10
自引率
7.50%
发文量
133
审稿时长
1 months
期刊介绍: Tree Physiology promotes research in a framework of hierarchically organized systems, measuring insight by the ability to link adjacent layers: thus, investigated tree physiology phenomenon should seek mechanistic explanation in finer-scale phenomena as well as seek significance in larger scale phenomena (Passioura 1979). A phenomenon not linked downscale is merely descriptive; an observation not linked upscale, might be trivial. Physiologists often refer qualitatively to processes at finer or coarser scale than the scale of their observation, and studies formally directed at three, or even two adjacent scales are rare. To emphasize the importance of relating mechanisms to coarser scale function, Tree Physiology will highlight papers doing so particularly well as feature papers.
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