论文标题

社交昆虫及以后:柔软,密集无脊椎动物聚集的物理学

Social Insects and Beyond: The Physics of Soft, Dense Invertebrate Aggregations

论文作者

Shishkov, O., Peleg, O.

论文摘要

聚集是一种常见的行为,通过将生物群排列成凝聚力组的共同行为。无论是悬浮在空气中(例如蜜蜂簇),建在地面上(例如陆军桥桥),还是沉浸在水中(例如污垢蠕虫斑点),这些集体都可以提供多种生物学功能,从保护到捕食的能力,即尽管有可变的环境,可以保持相对可取的本地环境。在这篇综述中,我们从软物质的角度调查了各种昆虫,其他节肢动物和蠕虫的密集聚集。聚集可以是比单个生物大的数量级,由数十万个个体组成,但起着连贯的实体的作用。了解聚合的生物如何相互协调以形成超生物需要跨学科的方法。我们讨论聚集的物理学如何从生态和生理考虑方面获得更多的见解,因为汇总个人将信息,能量和物质与环境和彼此之间的交换不断交流。自从1900年代初以来,已经提出了动物聚集与非生存材料物理学之间的联系,但行为研究的最近出现为受物理原理控制的社会互动提供了新的见解。当前的努力集中在整个昆虫上。但是,我们表明,这些可能只是一批超级生物的冰山一角,这些冰山会利用物理互动和简单的行为规则来适应不断变化的环境。通过引起广泛的无脊椎动物聚集的关注,我们希望激发新一代的科学家探索集体动态,并更深入地了解密集的生活聚集物的物理学。

Aggregation is a common behavior by which groups of organisms arrange into cohesive groups. Whether suspended in the air (like honey bee clusters), built on the ground (such as army ant bridges), or immersed in water (such as sludge worm blobs), these collectives serve a multitude of biological functions, from protection against predation to the ability to maintain a relatively desirable local environment despite a variable ambient environment. In this review, we survey dense aggregations of a variety of insects, other arthropods, and worms from a soft matter standpoint. An aggregation can be orders of magnitude larger than its individual organisms, consisting of tens to hundreds of thousands of individuals, and yet functions as a coherent entity. Understanding how aggregating organisms coordinate with one another to form a superorganism requires an interdisciplinary approach. We discuss how the physics of the aggregation can yield additional insights to those gained from ecological and physiological considerations, given that the aggregating individuals exchange information, energy, and matter continually with the environment and one another. While the connection between animal aggregations and the physics of non-living materials has been proposed since the early 1900s, the recent advent of physics of behavior studies provides new insights into social interactions governed by physical principles. Current efforts focus on eusocial insects; however, we show that these may just be the tip of an iceberg of superorganisms that take advantage of physical interactions and simple behavioral rules to adapt to changing environments. By bringing attention to a wide range of invertebrate aggregations, we wish to inspire a new generation of scientists to explore collective dynamics and bring a deeper understanding of the physics of dense living aggregations.

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