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Biology subjects

Mears, K.

Publications and source records attributed to Mears, K..

4 recordsLinked to original sources

SOS-mediated prophage induction constrains resistance evolution to DNA-damaging antibiotics

Most naturally occurring bacteria are lysogens, encoding one or more temperate phages (prophages) integrated into their genome. As prophages are induced by the bacterial SOS response, DNA-damaging antibiotics can trigger SOS-mediated prophage induction, where prophages undergo lytic replication and lyse their host, even at sub-inhibitory concentrations. This prophage-antibiotic synergy therefore sensitizes lysogenic hosts to DNA-damaging antibiotics. However, the mechanism by which prophage-induced sensitization affects the evolution of resistance against these agents is unclear. Here we show that ciprofloxacin-resistant lysogens arise less frequently but exhibit higher levels of resistance following selection. Whole-genome sequencing showed that increased lysogen resistance arose from selection towards mutations in drug targets, efflux pathways, and stress response regulators that reduce antibiotic efficacy or alter SOS induction. Consistent with this result, resistant lysogens exhibited a dampened SOS response, suggesting that prophage induction imposes an additional selective filter on their hosts by eliminating mutants that experience sufficient DNA damage to activate the SOS response. By contrast, prophage carriage had no effect on sensitivity or resistance evolution for antibiotics where DNA damage occurs downstream of the primary mechanism of action. Together, these findings indicate that prophage induction acts as an evolutionary bottleneck that restricts many resistance trajectories while favoring the emergence of rarer, large-effect mutations, potentially accelerating the evolution of high-level resistance.

microbiology↗

In vivo generation of chimeric antigen receptor T cells using optimally retargeted and functionalized lentiviral vectors with reduced immune clearance

Despite striking efficacy against hematologic malignancies, the cost and complexity of CAR T manufacturing present significant barriers to broader patient access. Beyond manufacturing challenges, ex vivo expansion of T cells may be detrimental for their function and persistence. Thus, delivery of CARs to reprogram host cells in vivo would represent a significant advance toward "off-the-shelf" therapy but has been limited by low efficiency, low specificity, and immunogenicity of viral vectors. Here we describe the design of pseudotyped lentiviral vectors (LV) with superior functionality and high target specificity. We show that LV pseudotyped with chimeric envelope glycoproteins from dolphin morbillivirus (DMV) can be engineered to selectively infect human T cells and evade neutralizing antibody responses in measles-vaccinated human serum. We further demonstrate that camelid-derived nanobodies are a superior retargeting domain, overcoming limitations inherent to the use of single chain variable fragment antibodies. Using a chimeric DMV-pseudotyped virus targeting the CD7 receptor, we demonstrate efficient and highly specific infection of T cells both in vitro and in vivo, generating functional CAR T cells and inducing therapeutic efficacy in a preclinical B cell lymphoma model.

bioengineering↗

RNA-guided nucleases enable a gene drive of insertion sequences in plasmids

Mobile genetic elements (MGEs) are diverse, self-replicating DNA molecules that can reside within cellular hosts and integrate into one another. This co-occurrence imposes distinct evolutionary pressures. Plasmids often contain insertion sequences (ISs). However, the multi-copy nature of plasmids should hinder IS introduction and spread, disfavoring inheritance of nascent plasmid variants through genetic drift. Mechanisms by which ISs overcome these barriers remain unidentified. Here we find that the RNA-guided nuclease TnpB enables such a mechanism to bias its inheritance in plasmids. We show that TnpB, the likely ancestor to Cas12, enables a gene drive to spread the IS within multicopy plasmids and functions as a primitive anti-self defense system in conjugative plasmids. The gene drive between TnpB-bearing ISs and plasmids promotes the spread of both MGEs beyond the ability of either individually. The nested existence between MGEs is not an incidental result of selfish spread, but a driver of it.

microbiology↗

cGLRs are a diverse family of pattern recognition receptors in animal innate immunity

cGAS (cyclic GMP-AMP synthase) is an enzyme in human cells that controls an immune response to cytosolic DNA. Upon binding DNA, cGAS synthesizes a nucleotide signal 2'3'-cGAMP that activates the protein STING and downstream immunity. Here we discover cGAS-like receptors (cGLRs) constitute a major family of pattern recognition receptors in animal innate immunity. Building on recent analysis in Drosophila, we use a bioinformatic approach to identify >3,000 cGLRs present in nearly all metazoan phyla. A forward biochemical screen of 140 animal cGLRs reveals a conserved mechanism of signaling including response to dsDNA and dsRNA ligands and synthesis of alternative nucleotide signals including isomers of cGAMP and cUMP-AMP. Using structural biology, we explain how synthesis of distinct nucleotide signals enables cells to control discrete cGLR-STING signaling pathways. Together our results reveal cGLRs as a widespread family of pattern recognition receptors and establish molecular rules that govern nucleotide signaling in animal immunity.

biochemistry↗