Published September 1, 2021 | Version v1

Membrane rigidity regulates E. coli proliferation rates

  • 1. Centro de Investigación y de Estudios Avanzados, Unidad Monterrey and Departamento de Química Física, Universidad Complutense de Madrid, Av. Complutense S/N, E-28040 Madrid, Spain
  • 2. Departamento de Quimica-Fisica, Universidad Complutense de Madrid, Av. Complutense S/N, E-28040 Madrid, Spain
  • 3. Centro de Investigación y de Estudios Avanzados - Unidad Monterrey, Monterrey, Mexico.
  • 4. CREA, Pg. Lluís Companys 23, E-08010 Barcelona, Spain. Centre de Recerca Matemàtica, Edifici C, Campus de Bellaterra, 08193 Bellaterra (Barcelona), Spain. Departament de Matemàtiques, Universitat Autònoma de Barcelona, 08193 Bellaterra (Barcelona), Spain. Barcelona Graduate School of Mathematics (BGSMath), Barcelona, Spain.
  • 5. Instituto de Fisica, U.N.A.M., Apartado Postal 20-364, 01000 Mexico D.F., Mexico
  • 6. Departament Fisica de la Materia Condensada, Facultat de Fisica, Universitat de Barcelona, Diagonal 645, E-08028 Barcelona, Spain Centre de Recerca Matemàtica, Edifici C, Campus de Bellaterra, 08193 Bellaterra, Spain Institute of Nanoscience and Nanotechnology (IN2UB), Universitat de Barcelona, Barcelona, Spain
  • 7. Departamento de Quimica-Fisica, Universidad Complutense de Madrid, Av. Complutense S/N, Madrid, Spain Translational Biophysics, Instituto de Investigación Sanitaria Hospital Doce de Octubre (IMAS12), 28041 Madrid, Spain

Description

Combining single cell experiments, population dynamics and theoretical methods of membrane mechanics, we put forward that the rate of cell proliferation in E. coli colonies can be regulated by modifiers of the mechanical properties of the bacterial membrane. Bacterial proliferation was modelled as mediated by cell division through a membrane constriction divisome based on FtsZ, a mechanically competent protein at elastic interaction against membrane rigidity. Using membrane fluctuation spectroscopy in the single cells, we revealed either membrane stiffening when considering hydrophobic long chain fatty substances, or membrane softening if short-chained hydrophilic molecules are used. Membrane stiffeners caused hindered growth under normal division in the microbial cultures, as expected for membrane rigidification. Membrane softeners, however, altered regular cell division causing persistent microbes that abnormally grow as long filamentous cells proliferating apparently faster. We invoke the concept of effective growth rate under the assumption of a heterogeneous population structure composed by distinguishable individuals with different FtsZ-content leading the possible forms of cell proliferation, from regular division in two normal daughters to continuous growing filamentation and budding. The results settle altogether into a master plot that captures a universal scaling between membrane rigidity and the divisional instability mediated by FtsZ at the onset of membrane constriction.


 

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