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Lum, K. Y.

Publications and source records attributed to Lum, K. Y..

3 recordsLinked to original sources

Beyond Antimicrobial Activity: Soil Bacteria Reveal a Biotransformation Fate for the Lanthipeptide Nisin

Natural products are central mediators of microbial interactions. However, once released into the environment, they also become available for neighboring microorganisms capable of degrading and modifying them through biotransformation. These biotransformations may fundamentally reshape metabolomes and influence community behavior, yet our understanding of these processes remains limited. Ribosomally synthesized peptides are particularly compelling in this context because their structural complexity and potent antimicrobial activity coexist with the potential to yield essential nutrients and reduced bioactivity through biotransformation. Identifying the pathways underlying these biotransformations is essential for understanding mechanisms that support microbial coexistence and nutrient recycling in soil microbiomes. Here, we used nisin as a model peptide to investigate biotransformation by soil bacteria. Selective isolation under nisin-rich, carbon-limited conditions yielded two Gram-negative isolates, Burkholderia stabilis and Pseudomonas fragi. Using growth assays and liquid chromatography-mass spectrometry, we found that both isolates grow in the presence of nisin while biotransforming and depleting the peptide. Burkholderia stabilis completely converted nisin through sequential cleavage of the C-terminus, hinge region and lanthionine ring C, whereas Pseudomonas fragi showed more limited processing restricted to the C-terminal region. Although these biotransformations dismantled structural features required for nisins antimicrobial activity, the intrinsic resistance of both isolates suggests a role beyond detoxification. We further detected nisin biosynthetic genes in the source environment, supporting nisins ecological relevance and suggesting that these bacteria may participate in its turnover in soil. Together, these findings reveal extensive microbial processing of nisin and support a role for antimicrobial peptide recycling in soil microbiomes. ImportanceNatural products are often studied through the lens of their biological activities, but much less attention has been paid to what happens to these molecules after they enter complex microbial communities. Using the lantibiotic nisin as a model system, we show that soil bacteria can extensively biotransform and deplete an antimicrobial peptide through extracellular enzymatic activity. The presence of both nisin-producing and nisin-biotransforming microorganisms in the same soil environment suggests that antimicrobial peptides may be continuously produced and recycled in nature. Our findings highlight biotransformation as an important but underexplored process governing the persistence, turnover, and ecological roles of microbial natural products.

microbiology↗

Antimicrobial and Cytotoxic Lysolipins I-M Isolated from Streptomyces sp. P8-2B18

Lysolipin I (1) is a highly bioactive xanthone with strong antibacterial and cytotoxic properties. Given the limited number of lysolipin analogues, discovery of new natural lysolipin derivatives is important for understanding their structure-activity relationships. A soil-derived Streptomyces sp. P8-2B18 harbors a putative lysolipin biosynthetic gene cluster and LC-MS based metabolomic analysis revealed the production of lysolipin I along with unreported analogues. Large-scale fermentation followed by isolation led to the discovery of four new analogues, lysolipins J-M (2- 5), the structures of which were elucidated by mass spectrometric and NMR spectroscopic data analyses. Lysolipin L features a five-membered lactam F ring, which was unprecedented in reported lysolipins. Lysolipin M has a novel skeleton, with an extra methyl (Me-36) and a glycosyl group replacing a 1,3-oxane ring in lysolipin I. While lysolipins I, J and K displayed strong activity against Staphylococcus aureus and Aspergillus flavus with MIC values ranging from 0.25 to 4 g/mL and lysolipin L showed only moderate activities, lysolipin M was inactive (>50 g/mL). Lysolipins I-K showed potent cytotoxic activity against prostate cancer cell lines LNCaP and C4-2B, with IC50 values in the submicromolar range. In contrast, lysolipin L exhibited no cytotoxicity and lysolipin M exhibited substantially reduced potency. Their broad, non-selective bioactivities restricted their applicability as therapeutic agents.

microbiology↗

Discovery and Biosynthesis of Nyuzenamides D and E by Genome Mining in Streptomyces hygroscopicus

Nyuzenamides belong to the class of bioactive cinnamoyl moiety containing non-ribosomal peptides (NRPs). However, their biosynthetic gene cluster (BGC) remains unconfirmed. Genome-mining revealed a putative nyu BGC in Streptomyces hygroscopicus DSM 40578. Nyuzenamides D (1) and E (2) were subsequently isolated, and the structures were elucidated by detailed NMR spectroscopic and MS spectrometric data analyses. The absolute configuration of 1 was determined by a single-crystal X-ray diffraction study. Through retro-biosynthesis and CRISPR-genome editing, the non-ribosomal peptide synthetase biosynthetic gene cluster for nyuzenamides was confirmed. Our discovery enriches the diversity of cinnamoyl-containing nonribosomal peptides and validates the biosynthetic gene clusters for future genome-mining research.

microbiology↗