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Biology subjects

Miller, K. W.

Publications and source records attributed to Miller, K. W..

2 recordsLinked to original sources

A Nonsteroidal Reversal Agent Inhibits Allopregnanolone Modulation of α1β3δ GABAA Receptors

The neurosteroid allopregnanolone is a positive allosteric modulator of GABA(A) receptors, which has proved beneficial in the treatment of major depressive disorder and epilepsies. It also has a role in treating the mood swings that are associated with fluctuations in its level during the menstrual cycle. Nonetheless, a subset of women do not tolerate high levels of allopregnanolone. Iso-allopregnanolone, a negative allosteric modulator, as well as synthetic steroid antagonists are used to treat such conditions. However, steroid-based medications are difficult to deliver and their specificity of action can be unclear. Recently introduced novel nonsteroidal agents that, like iso-allopregnanolone, can reverse the action of positive allosteric modulators without changing the positive action of GABA, might provide an alternative. We surveyed a number of them on human 1{beta}3{delta} GABAARs using a [3H]muscimol binding assay. A 6-membered ring spiro-hydantoin, DKD99, allosterically reversed the positive allosteric action of allopregnanolone over a wide concentration range (6 to 1,000 nM). DKD99 shifted allopregnanolones modulation curve 10-fold to the right. Furthermore, it has a much lower affinity when exerting similar actions on 1{beta}3{gamma}2 receptors. Agents such as this have utility for elucidating underlying mechanisms and may offer an alternative pathway for the development of nonsteroidal therapies against the positive allosteric modulatory actions of neurosteroids.

pharmacology and toxicology↗

Distinct Membrane Binding Properties of the Two Non-visual Arrestins

Membrane interactions play a crucial role in regulating arrestin activation and its binding to phosphorylated G protein-coupled receptors (GPCRs). Here, we utilize in vitro biophysical approaches and cell-based fluorescence intensity fluctuation analysis to systematically compare the membrane-binding properties of the two highly conserved arrestin subtypes, arrestin-2 and arrestin-3, under basal and stimulated conditions. Our findings reveal that arrestin-2 selectively engages the PI(4,5)P2-containing nanodiscs via its C-edge, whereas arrestin-3 primarily utilizes its finger loop to interact with negatively charged lipids. Notably, while the lipid bilayer alone does not activate arrestin, it synergistically enhances arrestin-2/3 activation in conjunction with a phosphorylated GPCR C-tail. Additionally, the spacing between receptor phosphorylation sites and the lipid bilayer modulates arrestin-membrane assembly. Live cell tracking further demonstrates that arrestin-2 and arrestin-3 exhibit distinct plasma membrane dissociation dynamics. These findings provide novel insights into the mechanisms governing arrestin activation and its functional interplay with membranes.

biochemistry↗