Development of 2nd generation aminomethyl spectinomycins that overcome native efflux in Mycobacterium abscessus

Author:

Phelps Gregory A.12ORCID,Cheramie Martin N.1,Fernando Dinesh M.1,Selchow Petra3ORCID,Meyer Christopher J.1,Waidyarachchi Samanthi L.1ORCID,Dharuman Suresh1ORCID,Liu Jiuyu1ORCID,Meuli Michael34ORCID,Molin Michael Dal3,Killam Benjamin Y.5ORCID,Murphy Patricia A.1,Reeve Stephanie M.1,Wilt Laura A.1ORCID,Anderson Shelby M.1ORCID,Yang Lei1ORCID,Lee Robin B.1,Temrikar Zaid H.6,Lukka Pradeep B.6,Meibohm Bernd6ORCID,Polikanov Yury S.578ORCID,Hobbie Sven N.3ORCID,Böttger Erik C.34ORCID,Sander Peter34ORCID,Lee Richard E.1ORCID

Affiliation:

1. Department of Chemical Biology and Therapeutics, St. Jude Children’s Research Hospital, Memphis, TN 38105

2. Graduate School of Biomedical Sciences, St. Jude Children’s Research Hospital, Memphis, TN 38103

3. Institute of Medical Microbiology, University of Zurich, Zurich CH-8006, Switzerland

4. National Reference Center for Mycobacteria, Zurich CH-8006, Switzerland

5. Department of Biological Sciences, University of Illinois at Chicago, Chicago, IL 60607

6. Department of Pharmaceutical Sciences, University of Tennessee Health Science Center, Memphis, TN 38163

7. Department of Pharmaceutical Sciences, University of Illinois at Chicago, Chicago, IL 60607

8. Center for Biomolecular Sciences, University of Illinois at Chicago, Chicago, IL 60607

Abstract

Mycobacterium abscessus ( Mab ), a nontuberculous mycobacterial (NTM) species, is an emerging pathogen with high intrinsic drug resistance. Current standard-of-care therapy results in poor outcomes, demonstrating the urgent need to develop effective antimycobacterial regimens. Through synthetic modification of spectinomycin (SPC), we have identified a distinct structural subclass of N-ethylene linked aminomethyl SPCs (eAmSPCs) that are up to 64-fold more potent against Mab over the parent SPC. Mechanism of action and crystallography studies demonstrate that the eAmSPCs display a mode of ribosomal inhibition consistent with SPC. However, they exert their increased antimicrobial activity through enhanced accumulation, largely by circumventing efflux mechanisms. The N-ethylene linkage within this series plays a critical role in avoiding TetV-mediated efflux, as lead eAmSPC 2593 displays a mere fourfold susceptibility improvement against Mab Δ tetV, in contrast to the 64-fold increase for SPC. Even a minor shortening of the linkage by a single carbon, akin to 1st generation AmSPC 1950, results in a substantial increase in MICs and a 16-fold rise in susceptibility against Mab Δ tetV . These shifts suggest that longer linkages might modify the kinetics of drug expulsion by TetV, ultimately shifting the equilibrium towards heightened intracellular concentrations and enhanced antimicrobial efficacy. Furthermore, lead eAmSPCs were also shown to synergize with various classes of anti- Mab antibiotics and retain activity against clinical isolates and other mycobacterial strains. Encouraging pharmacokinetic profiles coupled with robust efficacy in Mab murine infection models suggest that eAmSPCs hold the potential to be developed into treatments for Mab and other NTM infections.

Funder

HHS | NIH | National Institute of Allergy and Infectious Diseases

HHS | NIH | National Institute of General Medical Sciences

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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