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词条 Mycofactocin
释义

  1. Name

  2. Function

  3. Biosynthesis

  4. References

{{short description|Type of peptide}}Mycofactocin is a peptide of the type known as RiPP (ribosomally synthesized and post-translationally modified peptides), naturally occurring in many types of Mycobacterium. It was discovered in a bioinformatics study in 2011.[1]

Name

The name "mycofactocin" is derived from three words, the genus name "Mycobacterium" (across which it is nearly universal), "cofactor" because its presence in a genome predicts the co-occurrence of certain families of enzymes as if it is a cofactor they require, and "bacteriocin" because a radical SAM enzyme critical to its biosynthesis, MftC, is closely related to the key enzyme for the biosynthesis of subtilosin A, a bacteriocin, from its precursor peptide.

Function

Mycofactocin is thought to play a role in redox pathways involving nicotinoproteins, enzymes with non-exchangeable bound nicotinamide adenine dinucleotide (NAD)[2]. This notion comes largely from comparative genomics work that highlighted the many parallels between mycofactocin and pyrroloquinoline quinone (PQQ).[3] In both cases, maturation of the RiPP requires post-translational modification of a precursor peptide by a radical SAM enzyme, the system appears in very similar form in large numbers of species, the product appears to be used within the cell rather than exported, and several families of enzymes occur exclusively in bacteria with those systems. The number of putatively mycofactocin-dependent oxidoreductases encoded by a single genome can be quite large: at least 19 for Rhodococcus jostii RHA1, and 26 for the short chain dehydrogenase/reductase (SDR) family alone in Mycobacterium avium.

Biosynthesis

The mycofactocin biosynthesis pathway is one of the most abundant of any RiPP system in the collection of bacterial genomes sequenced to date. However, its species distribution is heavily skewed towards the Actinobacteria, including Mycobacterium tuberculosis, which is the causative agent of tuberculosis and therefore the number one killer among bacterial pathogens of humans. The system is virtually absent from the normal human microbiome, although common in soil bacteria.

The biosynthesis of mycofactocin from its precursor peptide MftA begins with decarboxylation of the C-terminal tyrosine residue by the radical SAM enzyme MftC, with help from the precursor-binding protein MftB.[4][5]. However, MftC appears next to perform a further modification to the MftA precursor peptide, an easily missed isomerization, by introducing a tyramine-valine cross-link, and consuming another S-adenosylmethionine in the process[6]. The need for two modifications to MftA by MftC might explain the high degree of amino acid conservation in the last eight residues of MftA, as compared to the level of conservation seen for PqqA, precursor of PQQ. Next, the creatininase homolog MftE releases the C-terminal dipeptide, VY* (valine-tyrosine, where * indicates that the tyrosine was previously modified).[7] The biosynthesis may continue with additional modifications to VY* that are not yet characterized; the mature form of mycofactocin is not yet known.

References

1. ^{{cite journal |title=Bioinformatic evidence for a widely distributed, ribosomally produced electron carrier precursor, its maturation proteins, and its nicotinoprotein redox partners. |journal=BMC Genomics |year=2011 |last=Haft |first=Daniel H. |pmid=21223593|doi=10.1186/1471-2164-12-21 |volume=12 |pmc=3023750 |pages=21}}
2. ^{{cite journal|vauthors=Haft DH, Pierce PG, Mayclin SJ, Sullivan A, Gardberg AS, Abendroth J, etal | title=Mycofactocin-associated mycobacterial dehydrogenases with non-exchangeable NAD cofactors. | journal=Sci Rep | year= 2017 | volume= 7 | issue= | pages= 41074 | pmid=28120876 | doi=10.1038/srep41074 | pmc=5264612 | url=https://www.ncbi.nlm.nih.gov/entrez/eutils/elink.fcgi?dbfrom=pubmed&tool=sumsearch.org/cite&retmode=ref&cmd=prlinks&id=28120876 }}
3. ^{{cite journal |title=Using comparative genomics to drive new discoveries in microbiology. |journal=Curr Opin Microbiol |year=2014 |last=Haft |first=Daniel H. |pmid=25617609 |pmc=4325363 |doi=10.1016/j.mib.2014.11.017 |volume=23 |pages=189–96}}
4. ^{{cite journal |title=The Radical S-Adenosyl-l-methionine Enzyme MftC Catalyzes an Oxidative Decarboxylation of the C-Terminus of the MftA Peptide |journal=Biochemistry |pmid=27158836 |doi=10.1021/acs.biochem.6b00355 |volume=55 |year=2016 |pages=2813–6 | last1 = Bruender | first1 = NA | last2 = Bandarian | first2 = V}}
5. ^{{cite journal |title=Mycofactocin biosynthesis: modification of the peptide MftA by the radical S-adenosylmethionine protein MftC. |journal=FEBS Lett. |year=2016 |pmid=27312813 |doi=10.1002/1873-3468.12249 | last1 = Khaliullin | first1 = B | last2 = Aggarwal | first2 = P | last3 = Bubas | first3 = M | last4 = Eaton | first4 = GR | last5 = Eaton | first5 = SS | last6 = Latham | first6 = JA}}
6. ^{{cite journal| author=Khaliullin B, Ayikpoe R, Tuttle M, Latham JA| title=Mechanistic elucidation of the mycofactocin-biosynthetic radical S-adenosylmethionine protein, MftC. | journal=J Biol Chem | year= 2017 | volume= 292 | issue= 31 | pages= 13022-13033 | pmid=28634235 | doi=10.1074/jbc.M117.795682 | pmc=5546040 | url=https://www.ncbi.nlm.nih.gov/entrez/eutils/elink.fcgi?dbfrom=pubmed&tool=sumsearch.org/cite&retmode=ref&cmd=prlinks&id=28634235 }}
7. ^{{cite journal| author=Bruender NA, Bandarian V| title=The Creatininase Homolog MftE from Mycobacterium smegmatis Catalyzes a Peptide Cleavage Reaction in the Biosynthesis of a Novel Ribosomally Synthesized Post-translationally Modified Peptide (RiPP). | journal=J Biol Chem | year= 2017 | volume= 292 | issue= 10 | pages= 4371-4381 | pmid=28077628 | doi=10.1074/jbc.M116.762062 | pmc=5354501 | url=https://www.ncbi.nlm.nih.gov/entrez/eutils/elink.fcgi?dbfrom=pubmed&tool=sumsearch.org/cite&retmode=ref&cmd=prlinks&id=28077628 }}

5 : 2011 in science|Peptides|Cofactors|Molecular biology|Natural products

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