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Apiche, E. A.

Publications and source records attributed to Apiche, E. A..

2 recordsLinked to original sources

Rational design of tertiary coordination sphere of a heme-based sensor for two-orders enhanced oxygen affinity

Biological O2 sensing is crucial for diverse physiological functions across all forms of life. Heme-containing proteins achieve this by binding O2 to their iron center and have been found to display O2 affinities spanning several orders of magnitude. Despite decades of investigation into the structure and function of heme-based O2 sensors, the molecular mechanisms that enable the tuning of O2 affinity to match specific physiological roles remain unclear. Here, we utilize the O2 sensing mycobacterial DosS protein as a model system to explore the role of heme irons tertiary coordination sphere in controlling its O2 affinity. By rationally and systematically modifying the tertiary coordination sphere to promote the formation of a Trp-Tyr-Asn H-bond triad within the hemes distal pocket, we have enhanced the O2 affinity of WT DosS by over 150-fold. The rationally designed DosS exhibited a Kd value of 3 {+/-} 1 nM, compared to 460 {+/-} 80 nM for WT DosS. Employing a combination of structural, biochemical, spectroscopic, and computational studies, our analysis of WT and designed DosS variants highlights how the interplay between distal H-bond networks and heme-pocket electrostatics drives large differences in their O2 sensing capabilities. Ultimately, our work shows how metalloenzymes can dramatically alter their sensitivity to diatomic signaling molecules by tuning the tertiary coordination sphere, broadly impacting how we understand related biological sensing and signaling.

biochemistry↗

Oxygen affinities of DosT and DosS sensor kinases with implications for hypoxia adaptation in Mycobacterium tuberculosis

DosT and DosS are heme-based kinases involved in sensing and signaling O2 tension in the microenvironment of Mycobacterium tuberculosis (Mtb). Under conditions of low O2, they activate >50 dormancy-related genes and play a pivotal role in the induction of dormancy and associated drug resistance during tuberculosis infection. In this work, we reexamine the O2 binding affinities of DosT and DosS to show that their equilibrium dissociation constants are 3.3{+/-}1 M and 0.46{+/-}0.08 M respectively, which are six to eight-fold stronger than what has been widely referred to in literature. Furthermore, stopped-flow kinetic studies reveal association and dissociation rate constants of 0.84 M-1s-1 and 2.8 s-1, respectively for DosT, and 7.2 M-1s-1 and 3.3 s-1, respectively for DosS. Remarkably, these tighter O2 binding constants correlate with distinct stages of hypoxia-induced non-replicating persistence in the Wayne model of Mtb. This knowledge opens doors to deconvoluting the intricate interplay between hypoxia adaptation stages and the signal transduction capabilities of these important heme-based O2 sensors.

biochemistry↗