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糖苷水解酶在 S. gordonii 和 C. albicans 相互作用中的作用。

The Role of Glycoside Hydrolases in S. gordonii and C. albicans Interactions.

机构信息

State Key Laboratory of Oral Diseases, National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan Universitygrid.13291.38, Chengdu, China.

Department of Cariology and Endodontics, West China Hospital of Stomatology, Sichuan Universitygrid.13291.38, Chengdu, China.

出版信息

Appl Environ Microbiol. 2022 May 24;88(10):e0011622. doi: 10.1128/aem.00116-22. Epub 2022 May 4.

Abstract

Candida albicans can coaggregate with Streptococcus gordonii and cocolonize in the oral cavity. Saliva provides a vital microenvironment for close interactions of oral microorganisms. However, the level of fermentable carbohydrates in saliva is not sufficient to support the growth of multiple species. Glycoside hydrolases (GHs) that hydrolyze glycoproteins are critical for S. gordonii growth in low-fermentable-carbohydrate environments such as saliva. However, whether GHs are involved in the cross-kingdom interactions between C. albicans and S. gordonii under such conditions remains unknown. In this study, C. albicans and S. gordonii were cocultured in heart infusion broth with a low level of fermentable carbohydrate. Planktonic growth, biofilm formation, cell aggregation, and GH activities of monocultures and cocultures were examined. The results revealed that the planktonic growth of cocultured S. gordonii in a low-carbohydrate environment was elevated, while that of cocultured C. albicans was reduced. The biomass of S. gordonii in dual-species biofilms was higher than that of monocultures, while that of cocultured C. albicans was decreased. GH activity was observed in S. gordonii, and elevated activity of GHs was detected in S. gordonii-C. albicans cocultures, with elevated expression of GH-related genes of S. gordonii. By screening a mutant library of C. albicans, we identified a Δ/Δ mutant strain that showed reduced ability to promote the growth and GH activities of S. gordonii compared with the wild-type strain. Altogether, the findings of this study demonstrate the involvement of GHs in the cross-kingdom metabolic interactions between C. albicans and S. gordonii in an environment with low level of fermentable carbohydrates. Cross-kingdom interactions between Candida albicans and oral streptococci such as Streptococcus gordonii have been reported. However, their interactions in a low-fermentable-carbohydrate environment like saliva is not clear. The current study revealed glycoside hydrolase-related cross-kingdom communications between S. gordonii and C. albicans under the low-fermentable-carbohydrate condition. We demonstrate that C. albicans can promote the growth and metabolic activities of S. gordonii by elevating the activities of cell-wall-anchored glycoside hydrolases of S. gordonii. C. albicans gene is critical for this cross-kingdom metabolic communication.

摘要

白色念珠菌可以与戈登链球菌共聚并在口腔中定植。唾液为口腔微生物的密切相互作用提供了重要的微环境。然而,唾液中可发酵碳水化合物的水平不足以支持多种物种的生长。糖苷水解酶(GHs)可水解糖蛋白,对于戈登链球菌在唾液等可发酵碳水化合物含量低的环境中的生长至关重要。然而,在这种情况下,糖苷水解酶是否参与白色念珠菌和戈登链球菌之间的跨界相互作用尚不清楚。在这项研究中,将白色念珠菌和戈登链球菌在低可发酵碳水化合物的心脏输注肉汤中进行共培养。检测了单培养物和共培养物的浮游生长、生物膜形成、细胞聚集和糖苷水解酶活性。结果表明,低碳水化合物环境中共培养的戈登链球菌的浮游生长增加,而共培养的白色念珠菌的生长减少。双物种生物膜中戈登链球菌的生物量高于单培养物,而共培养的白色念珠菌的生物量减少。在戈登链球菌中检测到糖苷水解酶活性,并且在戈登链球菌-白色念珠菌共培养物中检测到糖苷水解酶活性升高,同时检测到戈登链球菌中与 GH 相关基因的表达升高。通过筛选白色念珠菌的突变文库,我们鉴定出与野生型菌株相比,具有降低的促进戈登链球菌生长和 GH 活性的Δ/Δ突变株。总的来说,这项研究的结果表明,糖苷水解酶参与了低可发酵碳水化合物环境中白色念珠菌和戈登链球菌之间的跨界代谢相互作用。已经报道了白色念珠菌和口腔链球菌(如戈登链球菌)之间的跨界相互作用。然而,它们在像唾液这样的低可发酵碳水化合物环境中的相互作用尚不清楚。本研究揭示了低可发酵碳水化合物条件下 S. gordonii 和 C. albicans 之间与糖苷水解酶相关的跨界交流。我们证明,白色念珠菌可以通过提高 S. gordonii 细胞壁锚定糖苷水解酶的活性来促进 S. gordonii 的生长和代谢活性。C. albicans 基因对这种跨界代谢通讯至关重要。

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