TY - JOUR
T1 - Identification of a selective manganese ionophore that enables nonlethal quantification of cellular manganese
AU - Horning, Kyle J.
AU - Joshi, Piyush
AU - Nitin, Rachana
AU - Balachandran, Rekha C.
AU - Yanko, Frank M.
AU - Kim, Kwangho
AU - Christov, Plamen
AU - Aschner, Michael
AU - Sulikowski, Gary A.
AU - David Weaver, C.
AU - Bowman, Aaron B.
N1 - Funding Information:
This work has been supported in part by National Institutes of Health NIEHS Grants RO1 ES010563, RO1 ES016931, T32 ES007028, and T15 LM007450 (to A. B. B., K. J. H., and M. A.). C. D. W. is an owner of WaveFront Biosciences and ION Biosciences, maker of the Panoptic plate reader and Fluo-4 AM, respectively. The content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health.
Publisher Copyright:
© 2020 Horning et al. Published under exclusive license by The American Society for Biochemistry and Molecular Biology, Inc.
PY - 2020/3/20
Y1 - 2020/3/20
N2 - Available assays for measuring cellular manganese (Mn) levels require cell lysis, restricting longitudinal experiments and multiplexed outcome measures. Conducting a screen of small molecules known to alter cellular Mn levels, we report here that one of these chemicals induces rapid Mn efflux. We describe this activity and the development and implementation of an assay centered on this small molecule, named manganese-extracting small molecule (MESM). Using inductively-coupled plasma-MS, we validated that this assay, termed here “manganese-extracting small molecule estimation route” (MESMER), can accurately assess Mn in mammalian cells. Furthermore, we found evidence that MESM acts as a Mn-selective ionophore, and we observed that it has increased rates of Mn membrane transport, reduced cytotoxicity, and increased selectivity for Mn over calcium compared with two established Mn ionophores, calcimycin (A23187) and ionomycin. Finally, we applied MESMER to test whether prior Mn exposures subsequently affect cellular Mn levels. We found that cells receiving continuous, elevated extracellular Mn accumulate less Mn than cells receiving equally-elevated Mn for the first time for 24 h, indicating a compensatory cellular homeostatic response. Use of the MESMER assay versus a comparable detergent lysis-based assay, cellular Fura-2 Mn extraction assay, reduced the number of cells and materials required for performing a similar but cell lethality-based experiment to 25% of the normally required sample size. We conclude that MESMER can accurately quantify cellular Mn levels in two independent cells lines through an ionophore-based mechanism, maintaining cell viability and enabling longitudinal assessment within the same cultures.
AB - Available assays for measuring cellular manganese (Mn) levels require cell lysis, restricting longitudinal experiments and multiplexed outcome measures. Conducting a screen of small molecules known to alter cellular Mn levels, we report here that one of these chemicals induces rapid Mn efflux. We describe this activity and the development and implementation of an assay centered on this small molecule, named manganese-extracting small molecule (MESM). Using inductively-coupled plasma-MS, we validated that this assay, termed here “manganese-extracting small molecule estimation route” (MESMER), can accurately assess Mn in mammalian cells. Furthermore, we found evidence that MESM acts as a Mn-selective ionophore, and we observed that it has increased rates of Mn membrane transport, reduced cytotoxicity, and increased selectivity for Mn over calcium compared with two established Mn ionophores, calcimycin (A23187) and ionomycin. Finally, we applied MESMER to test whether prior Mn exposures subsequently affect cellular Mn levels. We found that cells receiving continuous, elevated extracellular Mn accumulate less Mn than cells receiving equally-elevated Mn for the first time for 24 h, indicating a compensatory cellular homeostatic response. Use of the MESMER assay versus a comparable detergent lysis-based assay, cellular Fura-2 Mn extraction assay, reduced the number of cells and materials required for performing a similar but cell lethality-based experiment to 25% of the normally required sample size. We conclude that MESMER can accurately quantify cellular Mn levels in two independent cells lines through an ionophore-based mechanism, maintaining cell viability and enabling longitudinal assessment within the same cultures.
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U2 - 10.1074/jbc.RA119.009781
DO - 10.1074/jbc.RA119.009781
M3 - Article
C2 - 32047113
AN - SCOPUS:85082103481
SN - 0021-9258
VL - 295
SP - 3875
EP - 3890
JO - Journal of Biological Chemistry
JF - Journal of Biological Chemistry
IS - 12
ER -