bioRxiv Science⌕ Search

Biology subjects

Cortez-Romero, C. R.

Publications and source records attributed to Cortez-Romero, C. R..

2 recordsLinked to original sources

Origins of allostery in vertebrate hemoglobin evolution

Allostery is an essential and structurally complex form of biochemical regulation, but how allosteric proteins evolved from nonallosteric precursors is unknown. Vertebrate hemoglobin (Hb), a symmetrical tetramer, binds organic phosphates in a central cavity between subunits, which reduces its oxygen affinity. Using ancestral protein reconstruction, we show that Hb's historical precursor, a non-allosteric dimer, was fortuitously on the evolutionary edge of allostery: just three historical substitutions can confer allostery upon it -- one that causes tetramerization, and two others that create an effector-binding site in the cavity. The ancient tetramer could also have acquired inverse allostery -- effector binding that improves oxygen affinity -- via a single substitution that moves the binding site deeper in the cavity. These short evolutionary paths were possible because a key prerequisite for allostery -- propensity to occupy multiple conformations that change upon oxygen binding -- is an intrinsic, ancient property of the globin fold. Evolution of symmetric tetramerization caused this tertiary lability to propagate into oxygen-linked quaternary changes affecting the cavity, so the only remaining requirement for allostery was effector binding. Conformational heterogeneity and multimeric symmetry are widespread, suggesting that many allosteric proteins may have evolved by simple mechanisms from precursors fortuitously poised on the edge of allostery.

evolutionary biology↗

Imperfect symmetry facilitated the evolution of specificity and high-order stoichiometry in vertebrate hemoglobin

Many proteins form paralogous multimers - molecular complexes in which evolutionarily related proteins are arranged into specific quaternary structures. Little is known about the mechanisms by which they acquired their stoichiometry (the number of total subunits in the complex) and heterospecificity (the preference of subunits for their paralogs rather than other copies of the same protein). Here we use ancestral protein reconstruction and biochemical experiments to study historical increases in stoichiometry and specificity during the evolution of vertebrate hemoglobin (Hb), a 2{beta}2 heterotetramer that evolved from a homodimeric ancestor after a gene duplication. We show that the mechanisms for this evolutionary transition were simple. One hydrophobic substitution in subunit {beta} after the gene duplication was sufficient to cause the ancestral dimer to homotetramerize with high affinity across a new interface. During this same interval, a single-residue deletion in subunit at the older interface conferred specificity for the heterotetrameric form and the trans-orientation of subunits within it. These sudden transitions in stoichiometry and specificity were possible because the interfaces in Hb are isologous - involving the same surface patch on interacting subunits, rotated 180{degrees} relative to each other. This architecture amplifies the impacts of individual mutations on stoichiometry and specificity, especially in higher-order complexes, and allows single substitutions to differentially affect heteromeric vs homomeric interactions. Our findings suggest that elaborate and specific symmetrical molecular complexes may often evolve via simple genetic and physical mechanisms. Significance statementMany molecular complexes are made up of proteins related by gene duplication, but how these assemblies evolve is poorly understood. Using ancestral protein reconstruction and biochemical experiments, we dissected how vertebrate hemoglobin, which comprises two copies each of two related proteins, acquired this architecture from a homodimeric ancestor. Each aspect of this transition - from dimer to tetramer and homomer to heteromer - had a simple genetic basis: a single-site amino acid change in each protein drove these changes in size and specificity. These transitions were possible because hemoglobins architecture is symmetric, which amplified the effect of small biochemical changes on the assembly of the complex. Many protein complexes are symmetrical, suggesting that they too may have evolved via simple genetic mechanisms. Classification: Major classification - Biological Sciences Minor classifications - Biochemistry/Evolution

evolutionary biology↗