bioRxiv ScienceSearch

Biology subjects

England, W. E.

Publications and source records attributed to England, W. E..

2 recordsLinked to original sources

Interrogation of the integrated mobile genetic elements in gut-associated Bacteroidaceae with a consensus prediction approach

Exploration of mobile genetic element (MGE) diversity and relatedness is vital to understanding microbial communities, especially the gut microbiome, where the mobilization of antibiotic resistance and pathogenicity genes has important clinical consequences. Current MGE prediction tools are biased toward elements similar to previously-identified MGEs, especially tailed phages of proteobacterial hosts. Further, there is a need for methods to examine relatedness and gene sharing among MGEs. We present VICSIN, a consensus approach for MGE prediction and clustering of predictions to provide classification. Testing of VICSIN on datasets of Pseudomonas aeruginosa and Bacteroides fragilis genomes suggests VICSIN is the optimal approach to predict integrated MGEs from poorly-explored host taxa, because of its increased sensitivity and accuracy. We applied VICSIN to a dataset of gut-associated Bacteroidaceae genomes, identifying 816 integrated MGEs falling into 95 clusters, most of which are novel. VICSINs fast and simple network-building scheme revealed a high degree of gene sharing within and between related MGE clusters. Shared gene functions across MGEs include core mobilization functions and accessory gene content, such as type VI secretion systems and antibiotic resistance genes. The MGEs identified here encode a large portion of unknown gene content, emphasizing the fact that the full diversity of MGEs and the factors they encode remain very poorly understood. Together, this work motivates more exploration of the gut mobilome, which is likely one of the most potent drivers of microbial evolution in the human microbiome. IMPORTANCEMobile genetic elements (MGEs), including phages and integrative and conjugative elements (ICEs), drive the diversity and function of microbial communities through horizontal gene transfer. Current tools to predict MGEs in genomic sequence data are highly focused on phages, and are biased against the discovery of novel MGEs. We present VICSIN, a consensus approach to MGE prediction that is able to find a diversity of MGEs, particularly in poorly-understood bacterial taxa. By applying VICSIN to a large database of diverse Bacteroidaceae genomes, we have been able to get a distinct view of the gut mobilome, extending beyond the phageome. These novel MGEs belong to related groups, sharing a significant amount of functional gene content within and between groups, supporting a mosaic model of evolution for ICEs. Understanding how phages evolve in Bacteroidaceae hosts, however, remains elusive and highlights the need for more experimental research.

microbiology

aPKC drives cilia-independent Hedgehog signaling to maintain basal cell carcinoma growth

Primary cilia loss is a common feature of advanced cancers. While primary cilia are necessary to initiate Hedgehog (HH)-driven cancers, how HH pathway activity is maintained in advanced cancers devoid of primary cilia is unclear. Here, we find that HH-driven basal cell carcinoma (BCC) accumulates mutations in Alstrom and Usher syndrome genes. Loss of Alstrom and Usher syndrome gene expression, which are common underlying causes of deafness and blindness, suppresses primary ciliogenesis and HH signaling but enhances expression of atypical protein kinase C iota/lambda (aPKC), a GLI1 kinase necessary for advanced BCC growth. We show that aPKC expression is inversely correlated with primary ciliogenesis and that superficial BCCs display less primary cilia and higher aPKC expression, with the opposite trend in nodular BCC subtypes. Surprisingly, a constitutively active isoform of aPKC but not full-length protein drives HH pathway activity. Overexpression of the constitutively active aPKC variant can maintain HH pathway activity and tumor growth in the absence of primary cilia. Our results suggest tumors enhance isoform-specific expression of aPKC to prevent mutation-induced cessation of tumor growth.

cancer biology