Needle bacterial community structure across the species range of limber pine

IF 5.1 Q1 ECOLOGY ISME communications Pub Date : 2024-05-09 DOI:10.1093/ismeco/ycae062
Dana L. Carper, Travis J Lawrence, Dianne Quiroz, Lara M. Kueppers, A. C. Frank
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Abstract

Bacteria on and inside leaves can influence forest tree health and resilience. The distribution and limits of a tree species’ range can be influenced by various factors, with biological interactions among the most significant. We investigated the processes shaping the bacterial needle community across the species distribution of limber pine, a widespread Western conifer inhabiting a range of extreme habitats. We tested four hypotheses: 1) Needle community structure varies across sites, with site-specific factors more important to microbial assembly than host species selection; 2) dispersal limitation structures foliar communities across the range of limber pine; 3) the relative significance of dispersal and selection differs across sites in the tree species range, and 4) needle age structures bacterial communities. We characterized needle communities from the needle surface and tissue of limber pine and co-occurring conifers across 16 sites in the limber pine distribution. Our findings confirmed that site characteristics shape the assembly of bacterial communities across the host species range and showed that these patterns are not driven by dispersal limitation. Furthermore, the strength of selection by the host varied by site, possibly due to differences in available microbes. Our study, by focusing on trees in their natural setting, reveals real needle bacterial dynamics in forests, which is key to understanding the balance between stochastic and deterministic processes in shaping forest tree-microbe interactions. Such understanding will be necessary to predict or manipulate these interactions to support forest ecosystem productivity or assist plant migration and adaptation in the face of global change.
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松脂松物种范围内的针叶细菌群落结构
叶片上和叶片内的细菌可影响林木的健康和恢复能力。树种的分布和分布范围会受到各种因素的影响,其中最重要的因素是生物相互作用。我们研究了影响林缘松树针叶细菌群落的整个物种分布过程,林缘松树是一种广泛分布于西部的针叶树,栖息于一系列极端的栖息地。我们测试了四个假设1)不同地点的针叶群落结构各不相同,与宿主物种选择相比,地点特异性因素对微生物组合更为重要;2)在整个林柏松树种分布范围内,散布限制形成了叶片群落;3)在树种分布范围内,不同地点的散布和选择的相对重要性各不相同;4)针叶年龄形成了细菌群落。我们对林可松分布区内 16 个地点的林可松和共生针叶树的针叶表面和组织中的针叶群落进行了描述。我们的研究结果证实,地点特征决定了整个寄主物种范围内细菌群落的组合,并表明这些模式不是由扩散限制驱动的。此外,宿主的选择强度因地点而异,这可能是由于可用微生物的差异造成的。我们的研究通过关注自然环境中的树木,揭示了森林中真实的针状细菌动态,这对于理解形成森林树木-微生物相互作用的随机和确定过程之间的平衡至关重要。要预测或操纵这些相互作用,以支持森林生态系统的生产力,或帮助植物在全球变化中迁移和适应,就必须了解这些相互作用。
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