Ascus function: From squirt guns to ooze tubes

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2023-12-01 DOI:10.1016/j.funbio.2023.11.001
Nicholas P. Money , Jessica Stolze-Rybczynski , B. Eugene Smith , Dragana Trninić , Diana J. Davis , Mark W.F. Fischer
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Abstract

Unlike the mechanism of ballistospore discharge, which was not solved until the 1980s, the operation of asci as pressurized squirt guns is relatively straightforward and was understood in the nineteenth century. Since then, mycologists have sought to understand how structural adaptations to asci have allowed the ascomycetes to expel spores of different shapes and sizes over distances ranging from a few millimeters to tens of centimeters. These modifications include the use of valves at the tips of asci that maintain ascus pressure and expel spores at the highest speeds, and gelatinous appendages that connect spores after release and create larger projectiles with greater momentum than single spores. Clever experiments in the twentieth century coupled with meticulous microscopic studies led investigators to understand how asci with complicated apical structures worked and mathematical models produced estimates of launch speeds. With the recent application of high-speed video microscopy, these inferences about ascus function have been tested by imaging the motion of spores on a microsecond timescale. These experiments have established that ascospore discharge is the fastest fungal movement and is among the fastest movements in biology. Beginning with the history of the study of asci, this review article explains how asci are pressurized, how spores are released, and how far spores travel after their release. We also consider the efficiency of ascospore discharge relative to the mechanism of ballistospore discharge and examine the way that the squirt gun mechanism has limited the morphological diversity of ascomycete fruit bodies.

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Ascus功能:从水枪到软水管
与直到20世纪80年代才解决的弹孢子放电机制不同,asci作为加压水枪的操作相对简单,并在19世纪被理解。从那时起,真菌学家就开始试图了解子囊菌的结构适应是如何使子囊菌在几毫米到几十厘米的距离上排出不同形状和大小的孢子的。这些修改包括在子囊顶端使用阀门,以保持子囊压力并以最高速度排出孢子,以及凝胶附着物,在孢子释放后将孢子连接起来,产生比单个孢子更大的射体,其动量更大。在20世纪,聪明的实验加上细致的微观研究,使研究人员了解了具有复杂顶端结构的asci是如何工作的,并通过数学模型估算了发射速度。随着高速视频显微镜的应用,这些关于子囊功能的推论已经通过在微秒时间尺度上成像孢子的运动来验证。这些实验表明,子囊孢子的排出是真菌最快的运动,也是生物学中最快的运动之一。这篇综述文章从asci的研究历史开始,解释了asci是如何加压的,孢子是如何释放的,以及孢子释放后传播的距离。我们还考虑了子囊孢子排出效率与球孢排出机制的关系,并考察了水枪机制限制子囊菌子实体形态多样性的方式。
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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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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