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Hecht, M. H.

Publications and source records attributed to Hecht, M. H..

2 recordsLinked to original sources

An Insoluble De Novo Protein Enables Survival of E. coli by Co-precipitating with a Gene Repressor

De novo proteins that share no ancestry with natural sequences can serve as additions to the evolved proteomes of living cells. Upon expression in cells, these novel proteins can provide biological functions that alter cell viability and growth. To isolate such proteins, we searched a combinatorial library of novel sequences by selecting for sequences that sustain the growth of E. coli under conditions where the recipient cell would otherwise be inviable. This led to the discovery of Resc4 (Rescuer 4), a de novo protein that sustains growth on minimal medium of an E. coli strain harboring a lethal deletion of metC, which encodes cystathionine {beta}-lyase, an essential enzyme in the biosynthesis of methionine. Surprisingly, despite its ability to rescue the deletion of a biosynthetic enzyme, Resc4 is insoluble. Nonetheless, Resc4 sustains the growth of 11metC cells by upregulating expression of metB, which encodes a different enzyme, cystathionine {gamma}-synthase, which has a moonlighting activity that compensates for the deleted activity encoded by metC. Proteomic analysis revealed that Resc4 co-precipitates MetJ, the repressor of the methionine biosynthesis operon. Precipitation of MetJ leads to overproduction of cystathionine {gamma}-synthase, thereby allowing it to rescue the deletion of metC. These results, taken together with previous findings on other de novo proteins, demonstrate that novel proteins added to a cells proteome can perform life sustaining functions, and may shed light on de novo gene birth - both in synthetic biology and in natural evolution.

synthetic biology↗

Engineering a Covalent Linkage into a Dimeric De Novo Enzyme Reveals a Novel Life-Sustaining Mechanism

Designing novel proteins that share no homology with natural sequences, but which nonetheless provide life sustaining functions, is an important goal for synthetic biology. Towards this goal, we previously reported Syn-F4, the first de novo enzyme capable of catalyzing a life-sustaining reaction, both in vitro and in vivo. Syn-F4 catalyzes hydrolysis of the siderophore, ferric enterobactin, thereby releasing iron and enabling growth in iron-limited media of an otherwise inviable {Delta}fes strain of Escherichia coli. Although Syn-F4 provides a direct enzymatic replacement of the natural ferric enterobactin esterase encoded by Fes, it has a dramatically different structure and enzymatic mechanism than the natural Fes enzyme. The novel Syn-F4 enzyme forms a 4-helix bundle, comprising a homodimer of two -helical hairpins. Here we describe the engineering of a covalent peptide linkage into the homodimer to generate a single chain 4-helix bundle. As expected, the resulting linked protein (Syn-F4-Link) also rescued {Delta}fes cells in iron-limited media. Moreover, X-ray crystallography revealed a 3D structure similar to the parental homodimer. Surprisingly, however, the linked protein was not enzymatically active. Instead, Syn-F4-Link rescues {Delta}fes cells by upregulating biosynthesis of the enterobactin siderophore thereby enabling assimilation of sufficient iron to sustain cell growth. These findings demonstrate that two very similar de novo proteins can sustain cell growth using dramatically different biological mechanisms.

synthetic biology↗