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必然发育的 Blastocrithidia papi(锥虫科)在 Pyrrhocoris apterus(半翅目)的马氏管中,以及协调宿主-寄生虫的生命周期。

Obligate development of Blastocrithidia papi (Trypanosomatidae) in the Malpighian tubules of Pyrrhocoris apterus (Hemiptera) and coordination of host-parasite life cycles.

机构信息

Zoological Institute of the Russian Academy of Sciences, St. Petersburg, Russia.

Life Science Research Centre, Faculty of Science, University of Ostrava, Ostrava, Czechia.

出版信息

PLoS One. 2018 Sep 27;13(9):e0204467. doi: 10.1371/journal.pone.0204467. eCollection 2018.

Abstract

Blastocrithidia papi is a unique trypanosomatid in that its life cycle is synchronized with that of its host, and includes an obligate stage of development in Malpighian tubules (MTs). This occurs in firebugs, which exited the winter diapause. In the short period, preceding the mating of overwintered insects, the flagellates penetrate MTs of the host, multiply attached to the epithelial surface with their flagella, and start forming cyst-like amastigotes (CLAs) in large agglomerates. By the moment of oviposition, a large number of CLAs are already available in the rectum. They are discharged on the eggs' surface with feces, used for transmission of bugs' symbiotic bacteria, which are compulsorily engulfed by the newly hatched nymphs along with the CLAs. The obligate development of B. papi in MTs is definitely linked to the life cycle synchronization. The absence of peristalsis allow the trypanosomatids to accumulate and form dense CLA-forming subpopulations, whereas the lack of peritrophic structures facilitates the extensive discharge of CLAs directly into the hindgut lumen. The massive release of CLAs associated with oviposition is indispensable for maximization of the infection efficiency at the most favorable time point.

摘要

皮氏巴贝斯虫是一种独特的动基体目生物,其生命周期与宿主同步,并包括在马氏管(MTs)中发育的强制性阶段。这发生在火蝾螈中,它们已经结束了冬季休眠。在越冬昆虫交配之前的短时间内,鞭毛虫穿透宿主的 MTs,附着在表面上用它们的鞭毛繁殖,并开始在大聚集体中形成类孢囊样无鞭毛体(CLAs)。到产卵时,直肠中已经有大量的 CLA。它们与粪便一起被排放到卵的表面,用于传播虫子的共生细菌,这些细菌被刚孵化的若虫强制性吞噬,同时吞噬 CLA。B. papi 在 MTs 中的强制性发育绝对与生命周期同步有关。蠕动的缺失允许原生动物积累并形成密集的 CLA 形成亚群,而缺乏围食膜结构则便于 CLA 直接大量排入后肠腔。与产卵相关的大量 CLA 释放对于在最有利的时间点最大限度地提高感染效率是必不可少的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/52cc/6160041/71ed8053bd9b/pone.0204467.g001.jpg

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Recent advances in trypanosomatid research: genome organization, expression, metabolism, taxonomy and evolution.
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Trends Parasitol. 2018 Jun;34(6):466-480. doi: 10.1016/j.pt.2018.03.002. Epub 2018 Mar 28.
3
: Genomic insight into Parasite's Physiology.
Curr Genomics. 2018 Feb;19(2):150-156. doi: 10.2174/1389202918666170815143331.
4
Life cycle of Blastocrithidia papi sp. n. (Kinetoplastea, Trypanosomatidae) in Pyrrhocoris apterus (Hemiptera, Pyrrhocoridae).
Eur J Protistol. 2017 Feb;57:85-98. doi: 10.1016/j.ejop.2016.10.007. Epub 2016 Nov 16.
6
Back to monoxeny: Phytomonas nordicus descended from dixenous plant parasites.
Eur J Protistol. 2016 Feb;52:1-10. doi: 10.1016/j.ejop.2015.08.002. Epub 2015 Sep 5.
8
New Approaches to Systematics of Trypanosomatidae: Criteria for Taxonomic (Re)description.
Trends Parasitol. 2015 Oct;31(10):460-469. doi: 10.1016/j.pt.2015.06.015.
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Phytomonas: trypanosomatids adapted to plant environments.
PLoS Pathog. 2015 Jan 21;11(1):e1004484. doi: 10.1371/journal.ppat.1004484. eCollection 2015 Jan.

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