Cell cycle-dependent variation in endocytosis drives phenotypic diversity in M. tuberculosis
Subhash, N.; Radhakrishnan, S. K.; Vijay, H.; Bhalerao, N.; Molla, S.; Iyer, A.; Chakrabarti, S.; Sundaramurthy, V.
Show abstract
Cell-to-cell heterogeneity is a hallmark of biology, yet how host variability shapes intracellular pathogen phenotypes is unclear. Using single cell approaches and redox-sensitive Mycobacterium tuberculosis reporters, we reveal that interphase-driven shifts in endocytic capacity create distinct intracellular niches. Bacilli residing in high-endocytic G2 cells adopt more oxidized redox states, whereas those in low-endocytic G1 cells remain reduced, generating phenotypic diversity within a single infected population. Experimental manipulation of host cell cycle stage reprograms endocytic capacity and intrabacterial redox, establishing a causal link between host state and pathogen diversification. Notably, the finding that the cell cycle regulates endocytic capacity constitutes a fundamental cell-biological discovery with broad implications. This variability persists in post-differentiated macrophages, indicating that proliferative history imprints functional diversity onto innate immune cells. Together, these results identify interphase-regulated endocytosis as a host-intrinsic mechanism that shapes Mycobacterium tuberculosis phenotypes and suggest new host-directed avenues to influence infection trajectories and persistence.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Reversible assembly and disassembly of V-ATPase during the lysosome regeneration cycle 95%
- Katnip is required to maintain microtubule function and lysosomal delivery to autophagosomes and phagosomes 95%
- Kinetic investigation reveals an HIV-1 Nef-dependent increase in AP-2 recruitment and productivity at endocytic sites 95%
Similar papers in this journal
Similar papers in this journal
- Depletion of endomembrane reservoirs drives phagocytic appetite exhaustion in macrophages 97%
- The lipid transfer proteins Nir2 and Nir3 sustain phosphoinositide signaling and actin dynamics during phagocytosis 96%
- Proximity labelling identifies pro-migratory endocytic recycling cargo and machinery of the Rab4 and Rab11 families 95%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.