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Biology subjects

Harris, N. R.

Publications and source records attributed to Harris, N. R..

3 recordsLinked to original sources

Chemoselective Halogenation of Premarineosin A for Next-Generation Antimalarial Development

Premarineosin A undergoes rapid, chemoselective C12 halogenation under mild conditions, providing brominated, chlorinated, fluorinated, and iodinated analogs. These derivatives retained potent antiplasmodial activity against both chloroquine-sensitive and -resistant Plasmodium falciparum strains and displayed smaller reductions in potency against the resistant strain than the parent compound.

biochemistry↗

Redefining the Role of the EryM Acetyltransferase in Natural Product Biosynthetic Pathways

The GNAT (GCN5-related N-acetyltransferase) superfamily comprises enzymes with a conserved fold and diverse catalytic activities, including primarily acyl transfer, with a few examples of decarboxylation. EryM, a GNAT enzyme from Saccharopolyspora erythraea, has been implicated in both erythromycin and erythrochelin biosynthesis, with dual functionality as an acetyltransferase and a decarboxylase. Despite an historical association with malonyl-coenzyme A decarboxylation activity, the structural basis for this dual activity has remained unknown as its close homologs were identified with only acyl transfer activity. Here, crystal structures of EryM in its free form (2.5 [A]) and in complex with acetyl-CoA (2.9 [A]) reveal insights into the active site architecture and substrate interactions. Functional assays demonstrate that EryM catalyzes acyl transfer but lacks decarboxylation activity, challenging long-standing assumptions about its biosynthetic role. Comparative analysis of EryM and homologs in siderophore biosynthetic pathways highlights a conserved catalytic pocket with an essential His and identically positioned side chains common to GNAT enzymes for N-acyl transfer from CoA to primary hydroxylamine substrates. Bioinformatic analysis defines a large GNAT subfamily that is broadly distributed in the microbial world. These findings redefine EryM as an acetyltransferase and provide a foundation for understanding GNAT functional diversity in natural product biosynthesis.

biochemistry↗

Advancing (-)-Premarineosin A as a Potent Antimalarial Therapeutic via Metabolic Engineering and Late-Stage Derivatization

Diversification of structurally complex natural products remains a key challenge in the discovery of next-generation therapeutics. Premarineosin A, a potent and selective antimalarial natural product, is a promising yet underexplored scaffold due to limited availability and synthetic complexity. In this work, we overcome both barriers by coupling metabolic engineering with late-stage derivatization, enabling the first systematic exploration of the premarineosin A scaffold. Rational engineering of Streptomyces eitanensis, encoding a (-)-premarineosin A biosynthetic gene cluster, increased titers over 200-fold. Sustainable production of (-)-premarineosin A enabled a unique semi-synthetic and biocatalytic derivatization campaign. In this first structure-activity relationship study of premarineosin A, we accessed a suite of novel analogs, including a C12-brominated derivative with nanomolar potency (EC50 < 5 nM). This work establishes (-)-premarineosin A as a tractable and evolvable antimalarial scaffold, demonstrating how chemical biology approaches can unlock new structural and pharmacological space from complex microbial metabolites.

microbiology↗