<i>Bodo saltans</i> (Kinetoplastida) is dependent on a novel <i>Paracaedibacter</i>-like endosymbiont that possesses multiple putative toxin-antitoxin systems



Midha, Samriti, Rigden, Daniel J ORCID: 0000-0002-7565-8937, Siozios, Stefanos ORCID: 0000-0002-1104-7061, Hurst, Gregory DD ORCID: 0000-0002-7163-7784 and Jackson, Andrew P ORCID: 0000-0002-5704-8596
(2021) <i>Bodo saltans</i> (Kinetoplastida) is dependent on a novel <i>Paracaedibacter</i>-like endosymbiont that possesses multiple putative toxin-antitoxin systems. ISME JOURNAL, 15 (6). pp. 1680-1694.

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Abstract

Bacterial endosymbiosis has been instrumental in eukaryotic evolution, and includes both mutualistic, dependent and parasitic associations. Here we characterize an intracellular bacterium inhabiting the flagellated protist Bodo saltans (Kinetoplastida). We present a complete bacterial genome comprising a 1.39 Mb circular chromosome with 40.6% GC content. Fluorescent in situ hybridisation confirms that the endosymbiont is located adjacent to the nuclear membrane, and a detailed model of its intracellular niche is generated using serial block-face scanning electron microscopy. Phylogenomic analysis shows that the endosymbiont belongs to the Holosporales, most closely related to other α-proteobacterial endosymbionts of ciliates and amoebae. Comparative genomics indicates that it has a limited metabolism and is nutritionally host-dependent. However, the endosymbiont genome does encode diverse symbiont-specific secretory proteins, including a type VI secretion system and three separate toxin-antitoxin systems. We show that these systems are actively transcribed and hypothesize they represent a mechanism by which B. saltans becomes addicted to its endosymbiont. Consistent with this idea, attempts to cure Bodo of endosymbionts led to rapid and uniform cell death. This study adds kinetoplastid flagellates to ciliates and amoebae as hosts of Paracaedibacter-like bacteria, suggesting that these antagonistic endosymbioses became established very early in Eukaryotic evolution.

Item Type: Article
Uncontrolled Keywords: Kinetoplastida, Alphaproteobacteria, Phylogeny, Symbiosis, Eukaryota, Toxin-Antitoxin Systems
Depositing User: Symplectic Admin
Date Deposited: 05 Feb 2021 16:37
Last Modified: 08 Jan 2024 08:57
DOI: 10.1038/s41396-020-00879-6
Open Access URL: https://doi.org/10.1038/s41396-020-00879-6
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URI: https://livrepository.liverpool.ac.uk/id/eprint/3115253