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在有菌褶的蘑菇中,Buller 滴、弹孢子和菌褶形态之间的精确关系使得孢子能够得到最大程度的包装。

A precise relationship among Buller's drop, ballistospore, and gill morphologies enables maximum packing of spores within gilled mushrooms.

机构信息

Institut de Physique de Nice, UMR7010, Centre National de la Recherche Scientifique (CNRS) and Université Côte d'Azur, Nice, France.

Department of Botany, University of Wisconsin-Madison, Madison, Wisconsin 53706.

出版信息

Mycologia. 2021 Mar-Apr;113(2):300-311. doi: 10.1080/00275514.2020.1823175. Epub 2021 Jan 26.

DOI:10.1080/00275514.2020.1823175
PMID:33497296
Abstract

Basidiomycete fungi eject basidiospores using a surface tension catapult. A fluid drop forms at the base of each spore and, after reaching a critical size, coalesces with the spore and launches it from the gill surface. It has long been hypothesized that basidiomycete fungi pack the maximum number of spores into a minimal investment of biomass. Building on a nascent understanding of the physics underpinning the surface tension catapult, we modeled a spore's trajectory away from a basidium and demonstrated that to achieve maximum packing the size of the fluid drop, the size of the spore, and the distance between gills must be finely coordinated. To compare the model with data, we measured spore and gill morphologies from wild mushrooms and compared measurements with the model. The empirical data suggest that in order to pack the maximum number of spores into the least amount of biomass, the size of Buller's drop should be smaller but comparable to the spore size. Previously published data of Buller's drop and spore sizes support our hypothesis and also suggest a linear scaling between spore radius and Buller's drop radius. Morphological features of the surface tension catapult appear tightly regulated to enable maximum packing of spores. If mushrooms are maximally packed and Buller's drop radii scale linearly with spore radii, we predict that intergill distance should be proportional to spore radius to the power 3/2.

摘要

担子菌真菌利用表面张力弹射器来喷射担孢子。每个孢子的基部形成一个液滴,达到临界大小后,与孢子合并并将其从菌褶表面弹射出去。长期以来,人们一直假设担子菌真菌以最小的生物质投入来包装最大数量的孢子。基于对表面张力弹射器背后物理原理的初步理解,我们对孢子从担子脱离的轨迹进行了建模,并证明为了实现最大包装,液滴的大小、孢子的大小和菌褶之间的距离必须精细协调。为了将模型与数据进行比较,我们从野生蘑菇中测量了孢子和菌褶的形态,并将测量值与模型进行了比较。经验数据表明,为了将最大数量的孢子包装到最少的生物质中,布勒氏滴的大小应该更小,但与孢子大小相当。之前发表的布勒氏滴和孢子大小的数据支持我们的假设,并表明孢子半径和布勒氏滴半径之间存在线性比例关系。表面张力弹射器的形态特征似乎受到严格调节,以实现孢子的最大包装。如果蘑菇被最大限度地包装,并且布勒氏滴半径与孢子半径呈线性比例,我们预测菌褶间距离应该与孢子半径的 3/2 次幂成正比。

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