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Rahn, T. A.

Publications and source records attributed to Rahn, T. A..

2 recordsLinked to original sources

Nir1-Nir2 Heterodimerization Confers Robustness to the Phosphoinositide Cycle

The phosphatidylinositol (PI) cycle sustains phosphoinositide-calcium signaling by replenishing plasma membrane phosphatidylinositol 4,5-bisphosphate (PIP2) consumed during receptor activation. Recruitment of the lipid transfer protein Nir2 to endoplasmic reticulum (ER)-plasma membrane (PM) contact sites (also known as ER-PM junctions) is central to this process, enabling transfer of PI from the ER to the PM for PIP2 resynthesis. Although the disease-associated Nir2 paralog Nir1 is essential for Nir2 recruitment under physiological conditions, the molecular basis of this regulation has remained unresolved. Here, we identify a conserved Nir Dimerization (NirD) domain in both Nir1 and Nir2 and determine the crystal structures. We show that NirD mediates preferential Nir1-Nir2 heterodimerization, which promotes Nir2 recruitment to ER-PM junctions and enhances PIP2 replenishment in stimulated cells. Furthermore, Nir1-Nir2 heterodimerization confers stimulus-strength-dependent, graded recruitment of Nir2, thereby broadening the sensitivity and dynamic range of PI cycle activity. Together, our findings uncover the structural mechanism underlying Nir1-dependent regulation of Nir2 and reveal paralog heterodimerization as a key strategy for scaling lipid transport at membrane contact sites to signaling demand, ensuring robust phosphoinositide homeostasis.

cell biology↗

Nir1-LNS2 is a novel phosphatidic acid biosensor that reveals mechanisms of lipid production

Despite various roles of phosphatidic acid (PA) in cellular functions such as lipid homeostasis and vesicular trafficking, there is a lack of high-affinity tools to study PA in live cells. After analyzing the predicted structure of the LNS2 domain from the lipid transfer protein Nir1, we suspected that this phosphatidic acid-interacting Lipin-like sequence of Nir1 (PILS-Nir1) could serve as a novel PA biosensor. We then performed liposome binding assays as well as pharmacological and genetic manipulations of HEK293A cells expressing a fluorescent PILS-Nir1 to determine how specific lipids affect the interaction of PILS-Nir1 with membranes. We found that PILS-Nir1 bound to both PA and PIP2 in vitro. However, only PA was necessary and sufficient to localize PILS-Nir1 to membranes in cells. PILS-Nir1 also showed a heightened responsiveness to PA produced in various organelles when compared to biosensors using the Spo20 PA binding domain. PILS-Nir1s high sensitivity revealed a modest but discernible contribution of PLD to PA production downstream of muscarinic receptors, which has not been visualized with previous Spo20-based probes. In summary, PILS-Nir1 emerges as a versatile and sensitive biosensor, offering a new powerful tool for real-time investigation of PA dynamics in live cells.

cell biology↗