Search bioRxiv⌕ Search

Biology subjects

Hellwig, L.

Publications and source records attributed to Hellwig, L..

2 recordsLinked to original sources

Small subunits MttS and MttQ of the MttP transporter regulate trimethylamine transport in Methanosarcina mazei

Small proteins (<100 aa) have moved in the focus of science after being overlooked for decades due to bioinformatical and biochemical challenges. While mass spectrometry-coupled ribosome profiling of the mesophilic methanoarchaeon Methanosarcina mazei has recently unveiled a wealth of novel small ORFs, the functional roles of most of their products remain unknown. Here, we report the characterization of MttQ (98 aa) and MttS (49 aa), products of small ORFs situated in an operon alongside genes encoding a drug-metabolite-efflux (DME) family transporter (mttP) and other enzymes involved in trimethylamine (TMA) degradation. MttS and MttQ interact with MttP to form a stable oligomeric complex spanning the cytoplasmic membrane. TMA transport activity of the MttQ/MttS/MttP-complex is demonstrated via in vivo Escherichia coli cells heterologously expressing this system. Based on the reduced growth of a M. mazei mutant lacking mttS, on TMA as sole carbon source, we conclude that MttS governs the specificity of TMA transport. We posit that interactions between a DME transporter, e.g., MttP, and small proteins fueled evolution of the MttPQS complex and the advent of selective TMA uptake in methylotrophic methanoarchaea. These findings suggest an evolutionary mechanism on how small accessory proteins can alter conserved core functions in order to explore new ecological niches. Further, given that TMA levels in the human bloodstream influence cardiovascular disease risk but can be degraded by host-associated methanoarchaea containing a homolog of the MttPQS-complex, our findings present insight into an archaeal pathway with relevance to human health.

microbiology↗

Transcription profiling and functional analysis of spRNAs and their corresponding asRNAs in Methanosarcina mazei

Small proteins (sPs) encoded by small RNAs (sRNAs), the so-called small protein RNAs (spRNAs), and their corresponding antisense RNAs (asRNAs) have emerged as important regulatory elements in microbial stress adaptation, yet remain poorly characterized in archaea. In this study, we identified and characterized five sRNA/asRNA pairs in the methanoarchaeon Methanosarcina mazei. Expression analysis revealed condition-specific regulation of two of those pairs, spRNA23/asRNA93 and spRNA24/asRNA94, under oxidative, temperature, and osmotic stress. Overexpression of the corresponding small proteins, sP23 and sP24, revealed distinct physiological effects: both enhanced growth under high-salt conditions, while sP24 in addition supported cell size maintenance during osmotic stress, as confirmed by transmission electron microscopy. Consistently, overexpression of asRNA94 let to impaired growth under salt stress, suggesting its negative regulatory role towards sP24. The results also imply that the antisense RNA might be crucial for controlling sP24 expression under non-stress conditions. Bioinformatic analysis predicted one transmembrane domain in sP24. Membrane-association of sP24 was experimentally validated in vitro using a cell-free expression system, demonstrating sP24s integration into lipid bilayers. Conservation analysis showed that spRNA24 appears specific for M. mazei strains potentially reflecting niche adaptation, while spRNA23 is widespread within Methanosarcina. These findings demonstrate that archaeal sRNAs can encode functional small proteins, often encoded together with their respective regulatory asRNA, that contribute to environmental stress responses, overall offering new insights into the role of sRNA-derived small proteins in archaea.

microbiology↗