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Layla Nassar

@laylanassar.bsky.social
58 followers 85 following 0 posts

PhD candidate at Yale Cell Biology

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Reposted by Layla Nassar
The Gu Lab @thegulab.bsky.social · 28/07/2026
Happy to share our Review, "Cellular and signalling mechanisms that regulate the blood-brain barrier" in @natrevmcb.nature.com www.nature.com/articles/s41... If you don't have subscription access, you can read it through this link: rdcu.be/fuyrO
nature.com
Cellular and signalling mechanisms that regulate the blood–brain barrier - Nature Reviews Molecular Cell Biology
This Review summarizes the latest advances in blood–brain barrier (BBB) research, highlighting how emerging findings on the modulation of BBB function and heterogeneity by cellular interactions and si...
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Reposted by Layla Nassar
bioRxiv Cell Biology @biorxiv-cellbio.bsky.social · 13/05/2026
Spatial distribution of blood-brain barrier membrane proteins is controlled by sorting motifs and physiological signals in vivo www.biorxiv.org/content/10.64898/20…
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Reposted by Layla Nassar
Journal of Cell Biology @jcb.org · 30/04/2026
A pressure relief valve for #lysosomes. @laylanassar.bsky.social and @shawnferguson.bsky.social @yaleschoolofmed.bsky.social discuss Kim et al.’s new study (doi.org/10.1083/jcb....): rupress.org/jcb/article-...
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Reposted by Layla Nassar
shawnferguson.bsky.social @shawnferguson.bsky.social · 22/04/2026
How do lysosomes rapidly adapt to membrane tension to avoid bursting? In this article, @laylanassar.bsky.social and I highlight discoveries from Angela Kim, Spencer Freeman and colleagues who show a role for TMEM63A, a mechanosensitive cation channel in protecting lysosomes doi.org/10.1083/jcb....
doi.org
A pressure relief valve for lysosomes
Nassar and Ferguson discuss work from Kim et al. showing that TMEM63A protects lysosomes from rupture by acting as a pressure relief valve when membrane te
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Reposted by Layla Nassar
Journal of Cell Biology @jcb.org · 23/04/2026
@laylanassar.bsky.social & @shawnferguson.bsky.social @yaleschoolofmed.bsky.social discuss Kim et al.’s study (doi.org/10.1083/jcb....) showing that TMEM63A protects #lysosomes from rupture by acting as a pressure relief valve when membrane tension rises. rupress.org/jcb/article/...
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Reposted by Layla Nassar
shawnferguson.bsky.social @shawnferguson.bsky.social · 09/06/2025
I am excited to share our new preprint! Led by @laylanassar.bsky.social , we have found a new JIP4-dependent mechanism that controls the efflux of cystine from lysosomes. Our findings have implications for both lysosome biology and human disease: doi.org/10.1101/2025...
doi.org
JIP4 deficiency causes a novel lysosome storage disease arising from impaired cystine efflux
Lysosomes break down macromolecules, clear cellular waste and recycle nutrients such as cystine. We describe a novel mechanism whereby JIP4 regulates lysosomal cystine storage by controlling the abundance of cystinosin (CTNS), the transporter responsible for lysosomal cystine efflux. To this end, JIP4, previously characterized as a motor adaptor and kinase signaling scaffold, suppresses TMEM55B-dependent ubiquitylation of CTNS. Loss of JIP4 reduces CTNS protein levels, leading to lysosomal cystine accumulation and lysosomal storage defects that phenocopy loss of CTNS in both human cells and the renal proximal tubules of JIP4 knockout mice. These phenotypes mirror cystinosis, the lysosomal storage disease caused by CTNS loss-of-function. Our findings thus reveal a fundamental process that controls the efflux of lysosomal cystine and has relevance to understanding human disease arising from JIP4 mutations. ### Competing Interest Statement The authors have declared no competing interest. NIH, AG085824, AG062210, R35GM150619 Michael J. Fox Foundation, https://ror.org/03arq3225, ASAP-000580
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