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Gallenito, M. J.

Publications and source records attributed to Gallenito, M. J..

3 recordsLinked to original sources

High-throughput MicroED for probing ion channel dynamics

Ion channels play a crucial role in ion transport and are integral to fundamental physiological processes. Therefore, understanding channel structures is essential for elucidating the mechanisms of ion permeation and selectivity beyond what can be predicted by computational simulations. Visualizing dynamics at high resolution, however, remains a significant challenge by structural techniques. In this study, we apply high-throughput Microcrystal Electron Diffraction (MicroED) to explore the structural dynamics of two ion channels, the non-selective ion channel NaK and its mutant, NaK2CNG. This approach utilizes automated data collection and processing to capture distinct structural substates from a large number of microcrystals, offering a deeper understanding of ion channel mechanisms. From a subset of NaK structures, we observed consistent sodium binding at specific sites. In contrast, NaK2CNG appears more dynamic and undergoes dilation of the selectivity filter upon potassium binding. Further, the conduction state of NaK2CNG appears to be influenced by channel gating. Comparative analysis of these structures reveals that non-selectivity arises from the plasticity of the selectivity filter, allowing dynamic control over ion passage. These studies, demonstrate the potential to employ high-throughput MicroED as a technique to address persistent questions regarding ion channel permeation, complementing current computational molecular dynamics studies. We anticipate that this approach will enhance future computational models, leading to more accurate predictions of ion channel behavior and providing a more comprehensive view of transport dynamics.

biochemistry↗

Ligand Screening and Discovery using Cocktail Soakingand Automated MicroED

Cocktail soaking using single-crystal X-ray diffraction (SC-XRD) has previously allowed high-throughput crystallographic screening of ligands against protein targets. However, protein microcrystals are not amenable to this approach if they are too small to yield strong diffraction patterns. In this study, we developed a workflow integrating cocktail soaking with automated microcrystal electron diffraction (MicroED) to allow rapid ligand screening, structure determination, and binding analysis directly from microcrystals. This can improve the successful hit rate, because binding is often more efficient when smaller crystals are soaked in the ligand. The approach was validated with known ligands of thermolysin and identified novel binding interactions for ligands of proteinase K. The structures of multiple protein-ligand complexes, including ligands with weak binding affinities, could be solved quickly. Their estimated relative binding affinities are in good agreement with previous work and independent microscale thermophoresis (MST) measurements.

biochemistry↗

Lipid flipping in the omega-3 fatty-acid transporter

Mfsd2a is the primary transporter for the docosahexaenoic acid (DHA), an omega-3 fatty acid, across the blood brain barrier (BBB). Defects in Mfsd2a are linked to ailments from behavioral, learning, and motor dysfunctions to severe microcephaly. Mfsd2a typically transports long-chain unsaturated fatty-acids, including DHA and -Linolenic acid (ALA), that are attached to the zwitterionic lysophosphatidylcholine (LPC) headgroup. Even with two recently determined structures of Mfsd2a the molecular details of how this transporter performs the energetically unfavorable task of translocating and flipping lysolipids across the lipid bilayer remained unclear. Here, we report five single-particle cryo-EM structures of the Danio rerio Mfsd2a (drMfsd2a): in the inward-open conformation in the ligand-free state and bound to ALA-LPC at four unique positions along the substrate translocation pathway. These Mfsd2a snapshots detail the Na+-dependent flipping mechanism of the lipid-LPC from outer to inner membrane leaflet during ligand translocation through the Mfsd2a substrate tunnel and release for membrane integration on the cytoplasmic side. These results also map Mfsd2a mutants that disrupt lipid-LPC transport and are associated with known disease. Together these results provide a model for omega-3 fatty-acid transport and has the potential for the design of the delivery strategies for amphipathic drugs across the BBB.

biophysics↗