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Weber, D. K.

Publications and source records attributed to Weber, D. K..

2 recordsLinked to original sources

A Kink in DWORF Helical Structure Controls the Activation of the Sarco-plasmic Reticulum Ca2+-ATPase

The sarco(endo)plasmic reticulum Ca2+-ATPase (SERCA) is a P-type ATPase embedded in the sarcoplasmic reticulum. For each enzymatic cycle, SERCA transports 2 Ca2+ ions per ATP hydrolyzed in exchange for 2 to 3 H+ ions. SERCA is responsible for approximately 70% of Ca2+ transport and plays a central role in muscle relaxation. SERCAs function is regulated by endogenous regulins, single-pass membrane proteins that bind the ATPase within the membrane. While most of the regulins, such as phospholamban and sarcolipin, inhibit SERCAs activity, a newly discovered protein DWarf Open Reading Frame (DWORF) has a unique activating effect. DWORF is a 3.8 kDa bitopic membrane protein expressed in cardiac muscle. In this work, we determine the structure, topology, and per-residue lipid interactions of DWORF in lipid bilayers using a combination of high-resolution oriented sample solid-state NMR (OS-ssNMR) spectroscopy and refinement by replica-averaged orientationally-restrained molecular dynamics (RAOR-MD). We found that DWORFs structural topology consists of a dynamic N-terminal domain, an amphipathic juxtamembrane helix that crosses the lipid groups at an angle of 64{degrees} and a transmembrane (TM) C-terminal helix with an angle of 32{degrees}. A kink induced by Pro15, unique to DWORF, separated the two helical domains. A single Pro15Ala mutant significantly decreases the kink and eliminates DWORFs activating effect on SERCA. Overall, our findings directly link DWORFs structural topology to its unique activating effect on SERCA.

biophysics

A Bitopic Miniprotein Regulates a Membrane-Embedded Enzyme via Topological Allostery

Phospholamban (PLN) is a mini-membrane protein that directly controls the cardiac Ca2+-transport response to {beta}-adrenergic stimulation, thus modulating cardiac output during the fight- or-flight response. In the sarcoplasmic reticulum membrane, PLN binds to the sarco(endo)plasmic reticulum Ca2+-ATPase (SERCA), keeping this enzymes function within a narrow physiological window. PLN phosphorylation by cAMP-dependent protein kinase A or increase in Ca2+ concentration reverses the inhibitory effects through an unknown mechanism. Using oriented-sample solid-state NMR spectroscopy and replica-averaged NMR-restrained structural refinement, we reveal that phosphorylation of PLNs cytoplasmic regulatory domain signals the disruption of several inhibitory contacts at the transmembrane binding interface of the SERCA-PLN complex that are propagated to the enzymes active site, augmenting Ca2+ transport. Our findings address long-standing questions about SERCA regulation, epitomizing a signal transduction mechanism operated by posttranslationally-modified bitopic membrane proteins.

biophysics