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Physical Limits of Cells and Proteomes

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Specialty Science
Date 2011 Oct 19
PMID 22006304
Citations 125
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Abstract

What are the physical limits to cell behavior? Often, the physical limitations can be dominated by the proteome, the cell's complement of proteins. We combine known protein sizes, stabilities, and rates of folding and diffusion, with the known protein-length distributions P(N) of proteomes (Escherichia coli, yeast, and worm), to formulate distributions and scaling relationships in order to address questions of cell physics. Why do mesophilic cells die around 50 °C? How can the maximal growth-rate temperature (around 37 °C) occur so close to the cell-death temperature? The model shows that the cell's death temperature coincides with a denaturation catastrophe of its proteome. The reason cells can function so well just a few degrees below their death temperature is because proteome denaturation is so cooperative. Why are cells so dense-packed with protein molecules (about 20% by volume)? Cells are packed at a density that maximizes biochemical reaction rates. At lower densities, proteins collide too rarely. At higher densities, proteins diffuse too slowly through the crowded cell. What limits cell sizes and growth rates? Cell growth is limited by rates of protein synthesis, by the folding rates of its slowest proteins, and--for large cells--by the rates of its protein diffusion. Useful insights into cell physics may be obtainable from scaling laws that encapsulate information from protein knowledge bases.

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References
1.
McGuffee S, Elcock A . Diffusion, crowding & protein stability in a dynamic molecular model of the bacterial cytoplasm. PLoS Comput Biol. 2010; 6(3):e1000694. PMC: 2832674. DOI: 10.1371/journal.pcbi.1000694. View

2.
Zeldovich K, Chen P, Shakhnovich E . Protein stability imposes limits on organism complexity and speed of molecular evolution. Proc Natl Acad Sci U S A. 2007; 104(41):16152-7. PMC: 2042177. DOI: 10.1073/pnas.0705366104. View

3.
Vertrees R, Zwischenberger J, Boor P, Pencil S . Oncogenic ras results in increased cell kill due to defective thermoprotection in lung cancer cells. Ann Thorac Surg. 2000; 69(6):1675-80. DOI: 10.1016/s0003-4975(00)01421-1. View

4.
Ignatova Z, Gierasch L . Monitoring protein stability and aggregation in vivo by real-time fluorescent labeling. Proc Natl Acad Sci U S A. 2004; 101(2):523-8. PMC: 327180. DOI: 10.1073/pnas.0304533101. View

5.
Rosato V, Pucello N, Giuliano G . Evidence for cysteine clustering in thermophilic proteomes. Trends Genet. 2002; 18(6):278-81. DOI: 10.1016/S0168-9525(02)02691-4. View