Temperature-driven biogeography of marine giant viruses infecting picoeukaryotes Micromonas.

IF 6.1 Q1 ECOLOGY
ISME communications Pub Date : 2025-08-14 eCollection Date: 2025-01-01 DOI:10.1093/ismeco/ycaf137
David Demory, Hisashi Endo, Anne-Claire Baudoux, Estelle Bigeard, Nigel Grimsley, Nathalie Simon, Hiroyuki Ogata, Joshua S Weitz
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Abstract

Climate shapes the biogeography of microbial and viral communities in the ocean. Among abiotic factors, temperature is one of the main drivers of microbial community distribution. However, we lack knowledge on how temperature shapes the life history traits, population dynamics, and the biogeography of marine viruses. This study integrates mathematical modeling with in situ observations to investigate the temperature-driven biogeography of marine viruses. We focused on prasinoviruses, a group of giant viruses that infect the picoeukaryote Micromonas, a widespread phytoplankton with thermotypes adapted from poles to tropics. Analyzing the Tara Oceans and Polar Circle databases, we found that temperature is the primary determinant of Micromonas virus (MicV) distribution in the surface ocean. Phylogenetic reconstruction of MicVs revealed that these viruses form several groups with cryophile or cryo-mesophile preferences. We applied a mechanistic model to describe temperature-driven population dynamics, allowing us to predict the global presence and absence of MicVs. The probability of lysis and the probability of infection emerged as reliable predictors of MicV distribution, indicating that temperature-driven cellular mechanisms significantly shape viral community structure and distribution in the global oceans.

海洋巨病毒感染微真核生物微单胞菌的温度驱动生物地理学研究。
气候塑造了海洋中微生物和病毒群落的生物地理。在非生物因素中,温度是影响微生物群落分布的主要因素之一。然而,我们缺乏关于温度如何影响海洋病毒的生活史特征、种群动态和生物地理的知识。本研究将数学模型与原位观测相结合,以研究海洋病毒的温度驱动生物地理学。我们关注的是prasinov病毒,这是一组感染微真核生物的巨型病毒,微单胞菌是一种广泛存在的浮游植物,具有从极地到热带的热型。通过对Tara Oceans和Polar Circle数据库的分析,我们发现温度是MicV在海洋表面分布的主要决定因素。micv的系统发育重建显示,这些病毒形成了几个具有嗜冷性或嗜冷中温性偏好的群体。我们应用了一个机制模型来描述温度驱动的种群动态,使我们能够预测micv的全球存在和不存在。裂解概率和感染概率成为MicV分布的可靠预测指标,表明温度驱动的细胞机制显著地塑造了全球海洋中的病毒群落结构和分布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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