Controlling heme redox properties in peptide amphiphile fibers with sequence and heme loading ratio

Controlling the reduction midpoint potential of heme B is a key factor in many bioelectrochemical reactions, including long-range electron transport. Currently, there are a number of globular model protein systems to study this biophysical parameter; however, there are none for large polymeric prote...

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Veröffentlicht in:Biophysical journal 2024-07, Vol.123 (13), p.1781-1791
Hauptverfasser: Dutta, Chiranjit, Lopez, Virginia, Preston, Conner, Rudra, Nimesh, Chavez, Alex Mauricio Valdivia, Rogers, Abigail M., Solomon, Lee A.
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Sprache:eng
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Zusammenfassung:Controlling the reduction midpoint potential of heme B is a key factor in many bioelectrochemical reactions, including long-range electron transport. Currently, there are a number of globular model protein systems to study this biophysical parameter; however, there are none for large polymeric protein model systems (e.g., the OmcS protein from G. sulfurreducens). Peptide amphiphiles, short peptides with a lipid tail that polymerize into fibrous structures, fill this gap. Here, we show a peptide amphiphile model system where one can tune the electrochemical potential of heme B by changing the loading ratio and peptide sequence. Changing the loading ratio resulted in the most significant increase, with values as high as −22 mV down to −224 mV. Circular dichroism spectra of certain sequences show Cotton effects at lower loading ratios that disappear as more heme B is added, indicating an ordered environment that becomes disrupted if heme B is overpacked. These findings can contribute to the design of functional self-assembling biomaterials.
ISSN:0006-3495
1542-0086
1542-0086
DOI:10.1016/j.bpj.2024.05.021