Itay Budin

@ibudin.bsky.social

Head of the Budin lab at UCSD (www.budinlab.com). Musings on thin layers of grease in our cells (and other topics). Lipids, cell membranes, biophysics, chem bio, evolution. 🏳️‍🌈

What membrane properties do cells maintain through regulation of lipid metabolism? In a new paper, we identify intrinsic curvature stress as one such parameter and show how different (eukaryotic) cell types employ different lipids to do that www.cell.com/cell-reports...

Active regulation of intrinsic curvature by eukaryotic phospholipid metabolism

Cells maintain membrane function by actively balancing the molecular shape of their lipids. Milshteyn et al. find that, when subjected to high hydrostatic pressure, yeast and human cells, but not bact...

cell.com

Happy new year! I've so enjoyed the end-of-year lists of people's favorite papers from 2025, so I made a list of 16 #lipidtime studies from 2025 that I found interesting. Here they are in no particular order (please add more if you would like!), and here's to much more exciting science in 2026! 🧪

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Researchers in Itay Budin's lab, incl. William Moore, have created a tool with the power to see lipid movement inside cells in unprecedented detail. The tool uses fluorogens to illuminate certain lipids while other remain dark. Their work appears in Nature Chemical Biology. https://bit.ly/4hnDFZG

The Many FACES of Lipid Research

Scientists have long wanted to get a closer look at the movement of lipids around a cell, but it’s tough to visualize with traditional light microscopy. UC San Diego researchers have unveiled a new technology with the power to see cells in unprecedented detail.

bit.ly

The 4 chemically targeted Laurdan derivatives (for mitochondria, ER, lyso/endosomes, and the Golgi) that we published last year are now available (at a pretty reasonable price) from Avanti Polar Lipids (cat #880194, 880197, 880193, 880196). These have been very popular! pubs.acs.org/doi/full/10....

Organelle-Targeted Laurdans Measure Heterogeneity in Subcellular Membranes and Their Responses to Saturated Lipid Stress

Organelles feature characteristic lipid compositions that lead to differences in membrane properties. In cells, membrane ordering and fluidity are commonly measured using the solvatochromic dye Laurdan, whose fluorescence is sensitive to lipid packing. As a general lipophilic dye, Laurdan stains all hydrophobic environments in cells; therefore, it is challenging to characterize membrane properties in specific organelles or assess their responses to pharmacological treatments in intact cells. Here, we describe the synthesis and application of Laurdan-derived probes that read out the membrane packing of individual cellular organelles. The set of organelle-targeted Laurdans (OTL) localizes to the ER, mitochondria, lysosomes, and Golgi compartments with high specificity while retaining the spectral resolution needed to detect biological changes in membrane ordering. We show that ratiometric imaging with OTLs can resolve membrane heterogeneity within organelles as well as changes in lipid packing resulting from inhibition of trafficking or bioenergetic processes. We apply these probes to characterize organelle-specific responses to saturated lipid stress. While the ER and lysosomal membrane fluidity is sensitive to exogenous saturated fatty acids, that of mitochondrial membranes is protected. We then use differences in ER membrane fluidity to sort populations of cells based on their fatty acid diet, highlighting the ability of organelle-localized solvatochromic probes to distinguish between cells based on their metabolic state. These results expand the repertoire of targeted membrane probes and demonstrate their application in interrogating lipid dysregulation.

pubs.acs.org

Happy to share our new publication in ACS Chemical Biology @pubs.acs.org reporting a new chemical biology tool – dual SLIPT! Congratulations to first author Kristina Bayer @XXX, all co-authors and collaborator Shige Yoshimura @XXX. Open Access: pubs.acs.org/doi/10.1021/... (1/5)

Dual SLIPT–A Lipid Mimic to Enable Spatiotemporally Defined, Sequential Protein Dimerization

Spatiotemporal control of proteins is crucial for cellular phenomena such as signal integration, propagation, as well as managing crosstalk. In membrane-associated signaling, this regulation is often enabled by lipids, wherein highly dynamic, sequential recruitment of interacting proteins is key to successful signaling. Here, we present dual SLIPT (self-localizing ligand-induced protein translocation), a lipid-analog tool, capable of emulating this lipid-mediated sequential recruitment of any two proteins of interest. Dual SLIPT self-localizes to the inner leaflet of the plasma membrane (PM). There, dual SLIPT presents trimethoprim (TMP) and HaloTag ligand (HTL) to cytosolic proteins of interest (POIs), whereupon POIs fused to the protein tags iK6eDHFR, or to HOB are recruited. A systematic extension of the linkers connecting the two mutually orthogonal headgroups was implemented to overcome the steric clash between the recruited POIs. Using Förster resonance energy transfer (FRET), we verify that the resulting probe is capable of simultaneous binding of both proteins of interest, as well as their dimerization. Dual SLIPT was found to be particularly suitable for use in physiologically relevant concentrations, such as recruitment via tightly regulated, transient lipid species. We further expanded dual SLIPT to the photocontrollable dual SLIPTNVOC, by introducing a photocaging group onto the TMP moiety. Dual SLIPTNVOC enables sequential and spatiotemporally defined dimerization upon blue light irradiation. Thus, dual SLIPTNVOC serves as a close mimic of physiology, enabling interrogation of dynamic cytosol-to-plasma membrane recruitment events and their impact on signaling.

pubs.acs.org