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Aubel, M.

Publications and source records attributed to Aubel, M..

2 recordsLinked to original sources

Chaperones facilitate heterologous expression of naturally evolved putative de novo proteins

Over the past decade, evidence has accumulated that new protein coding genes can emerge de novo from previously non-coding DNA. Most studies have focused on large scale computational predictions of de novo protein coding genes across a wide range of organisms. In contrast, experimental data concerning the folding and function of de novo proteins is scarce. This might be due to difficulties in handling de novo proteins in vitro, as most are predicted to be short and disordered. Here we propose a guideline for the effective expression of eukaryotic de novo proteins in Escherichia coli. We used 11 sequences from Drosophila melanogaster and 10 from Homo sapiens, that are predicted de novo proteins from former studies, for heterologous expression. The candidate de novo proteins have varying secondary structure and disorder content. Using multiple combinations of purification tags, E. coli expression strains and chaperone systems, we were able to increase the number of solubly expressed putative de novo proteins from 30 % to 62 %. Our findings indicate that the best combination for expressing putative de novo proteins in E.coli is a GST-tag with T7 Express cells and co-expressed chaperones. We found that, overall, proteins with higher predicted disorder were easier to express.

molecular biology↗

Experimental characterisation of de novoproteins and their unevolved random-sequencecounterparts

De novo gene emergence provides a route for new proteins to be formed from previously non-coding DNA. Proteins born in this way are considered random sequences, and typically assumed to lack defined structure. While it remains unclear how likely a de novo protein is to assume a soluble and stable tertiary structure, intersecting evidence from random-sequence and de novo-designed proteins suggests that native-like biophysical properties are abundant in sequence space. Taking putative de novo proteins identified in human and fly, we experimentally characterise a library of these sequences to assess their solubility and structure propensity. We compare this library to a set of synthetic random proteins with no evolutionary history. Bioin-formatic prediction suggests that de novo proteins may have remarkably similar distributions of biophysical properties to unevolved random sequences of a given length and amino acid composition. However, upon expression in vitro, de novo proteins exhibit higher solubility which is further induced by the DnaK chaperone system. We suggest that while synthetic ran-dom sequences are a useful proxy for de novo proteins in terms of structure propensity, de novo proteins may be better integrated in the cellular system given their higher solubility.

evolutionary biology↗