Probing Single-Cell Fermentation Fluxes and Exchange Networks via pH-Sensing Hybrid Nanofibers.

Valentina Onesto, Stefania Forciniti, Francesco Alemanno, Krishnadev Narayanankutty, Anil Chandra, Saumya Prasad, Amalia Azzariti, Giuseppe Gigli, Adriano Barra, Andrea De Martino, Daniele De Martino, Loretta L Del Mercato

Journal: ACS nano 2023;17(4):3313-3323

PMID: 36573897

Abstract

The homeostatic control of their environment is an essential task of living cells. It has been hypothesized that, when microenvironmental pH inhomogeneities are induced by high cellular metabolic activity, diffusing protons act as signaling molecules, driving the establishment of exchange networks sustained by the cell-to-cell shuttling of overflow products such as lactate. Despite their fundamental role, the extent and dynamics of such networks is largely unknown due to the lack of methods in single-cell flux analysis. In this study, we provide direct experimental characterization of such exchange networks. We devise a method to quantify single-cell fermentation fluxes over time by integrating high-resolution pH microenvironment sensing via ratiometric nanofibers with constraint-based inverse modeling. We apply our method to cell cultures with mixed populations of cancer cells and fibroblasts. We find that the proton trafficking underlying bulk acidification is strongly heterogeneous, with maximal single-cell fluxes exceeding typical values by up to 3 orders of magnitude. In addition, a crossover in time from a networked phase sustained by densely connected "hubs" (corresponding to cells with high activity) to a sparse phase dominated by isolated dipolar motifs (i.e., by pairwise cell-to-cell exchanges) is uncovered, which parallels the time course of bulk acidification. Our method addresses issues ranging from the homeostatic function of proton exchange to the metabolic coupling of cells with different energetic demands, allowing for real-time noninvasive single-cell metabolic flux analysis.

Address: Institute of Nanotechnology, National Research Council (CNR-NANOTEC), c/o Campus Ecotekne, via Monteroni, 73100Lecce, Italy.; Institute of Nanotechnology, National Research Council (CNR-NANOTEC), c/o Campus Ecotekne, via Monteroni, 73100Lecce, Italy.; Dipartimento di Matematica e Fisica E. De Giorgi, University of Salento, 73100Lecce, Italy.; Istituto Nazionale di Fisica Nucleare (INFN), Sezione di Lecce, 73100Lecce, Italy.; Biofisika Institutua (UPV/EHU, CSIC) and Fundación Biofísica Bizkaia, LeioaE-48940, Spain.; IRCCS Istituto Tumori Giovanni Paolo II, V.le O. Flacco, 65, 70124Bari, Italy.; Institute of Nanotechnology, National Research Council (CNR-NANOTEC), c/o Campus Ecotekne, via Monteroni, 73100Lecce, Italy.; Dipartimento di Matematica e Fisica E. De Giorgi, University of Salento, 73100Lecce, Italy.; Dipartimento di Matematica e Fisica E. De Giorgi, University of Salento, 73100Lecce, Italy.; Istituto Nazionale di Fisica Nucleare (INFN), Sezione di Lecce, 73100Lecce, Italy.; Politecnico di Torino, Corso Duca degli Abruzzi, 24, I-10129Torino, Italy.; Italian Institute for Genomic Medicine, IRCCS Candiolo, SP-142, I-10060Candiolo, Italy.; Biofisika Institutua (UPV/EHU, CSIC) and Fundación Biofísica Bizkaia, LeioaE-48940, Spain.; Ikerbasque Foundation, Bilbao48013, Spain.
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