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austin (he/him)

@austinjgraham.bsky.social
50 followers 79 following 13 posts

Postdoctoral Fellow with @ZevGartner at @UCSF & @CZBiohub. Science 🧬🦠, live music 🎶, and brews ☕️🍺. B.S. UCSB ‘16 🌊, Ph.D. UT Austin ‘21 🤘. he/him 🏳️‍🌈 i think i need more emojis

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Reposted by austin (he/him)
Nature Materials @natmater.nature.com · 18/03/2026
Stress-relaxing granular bioprinting materials enable complex and uniform organoid self-organization go.nature.com/4uGPjFk
go.nature.com
Stress-relaxing granular bioprinting materials enable complex and uniform organoid self-organization - Nature Materials
A tunable granular biomaterial matrix is developed to support long-term bioprinting. Stress relaxation at high strains and long timescales is shown to be important for tissue self-organization in inte...
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Reposted by austin (he/him)
Biohub @biohub.org · 19/03/2026
Biohub engineers, led by Rafael Gómez-Sjöberg & Michelle Khoo, designed and built the 3D organoid bioprinter for this work, which will help improve research on how our organs form and function, and develop new treatments for disease. New in @natmater.nature.com
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austin (he/him) @austinjgraham.bsky.social · 10/03/2026
organs develop in a dynamic environment where their boundaries are constantly changing shape, relaxing, compressing, etc. in synchrony with the embryo. see how this inspired us to create a material for optimal organoid bioprinting & self-organization! www.nature.com/articles/s41...
nature.com
Stress-relaxing granular bioprinting materials enable complex and uniform organoid self-organization - Nature Materials
A tunable granular biomaterial matrix is developed to support long-term bioprinting. Stress relaxation at high strains and long timescales is shown to be important for tissue self-organization in inte...
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Reposted by austin (he/him)
Fan Zhang @fanzzzz.bsky.social · 12/04/2025
SFB is always with so much fun! Gave my first talk on my postdoc work at #SFB2025, modulated a session, got 1st place in postdoc recognition award (really grateful for the opportunity and support) and first-time talking in a huge grand ballroom😂, and reunited with my lovely PhD lab!
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austin (he/him) @austinjgraham.bsky.social · 28/01/2025
really honored to be a part of this amazing work by @kateycooper.bsky.social and the LGBTQ+ Committee @ascbiology.bsky.social on quantifying the queer experience in biology. unfortunately, it is as timely as ever. thank you so much to everyone involved. www.biorxiv.org/content/10.1...
biorxiv.org
LGBTQ+ realities in the biological sciences
While scientific environments have been described as unwelcoming to the LGBGQ+ community, and fields like physics have systematically documented these challenges, the climate in biology workplaces has...
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Reposted by austin (he/him)
Jonah M Rosas, PhD @jonahrosas.bsky.social · 12/01/2025
Excited to share my recent works elucidating the role of spatial confinement in 3D models of pancreatic ductal adenocarcinoma!
pubs.acs.org
Differential Effects of Confinement on the Dynamics of Normal and Tumor-Derived Pancreatic Ductal Organoids
Pancreatic ductal adenocarcinoma (PDAC) is a cancer of the epithelia comprising the ductal network of the pancreas. During disease progression, PDAC tumors recruit fibroblasts that promote fibrosis, increasing local tissue stiffness and subjecting epithelial cells to increased compressive forces. Previous in vitro studies have documented cytoskeletal and nuclear adaptation following compressive stresses in two-dimensional (2D) and three-dimensional (3D) environments. However, a comparison of the responses of normal and tumor-derived ductal epithelia to physiologically relevant confinement remains underexplored, especially in 3D organoids. Here we control confinement with an engineered 3D microenvironment composed of Matrigel mixed with a low yield stress granular microgel. Normal and tumor-derived murine pancreas organoids (normal and tumor) were cultured for 48 h within this composite 3D environment or in pure Matrigel to investigate the effects of confinement on morphogenesis and lumen expansion. In confinement, tumor organoids (mT) formed a lumen that expanded rapidly, whereas normal organoids (mN) expanded more slowly. Moreover, a majority of normal organoids in more-confined conditions exhibited an inverted apicobasal polarity compared to those in less-confined conditions. Tumor organoids exhibited a collective “pulsing” behavior that increased in confinement. These pulses generated forces sufficient to locally overcome the yield stress of the microgels in the direction of organoid expansion. Normal organoids more commonly exhibit unidirectional rotation. Our in vitro microgel confinement platform enabled the discovery of two distinct modes of collective force generation in organoids that may shed light on the mutual interactions between tumors and the microenvironment. These insights into in vitro dynamics may deepen our understanding of how the confinement of healthy cells within a fibrotic tumor niche disrupts tissue organization and function in vivo.
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Reposted by austin (he/him)
Alex Hughes Lab @hugheslabpenn.bsky.social · 17/12/2024
Aria Huang's @azyhuang.bsky.social pre-print just came out on effects of adhesion and stiffness on global kidney explant size, shape and nephron forming efficiency. Along the way, she achieves beautiful 3D cultures that retain proper branching geometry, check it out! biorxiv.org/cgi/content/...
biorxiv.org
Engineering kidney developmental trajectory using culture boundary conditions
Kidney explant cultures are traditionally carried out at air-liquid interfaces, which disrupts 3D tissue structure and limits the interpretation of developmental data. To overcome this limitation, we ...
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Reposted by austin (he/him)
Tyler Huycke @thuycke.bsky.social · 13/12/2024
Super excited to announce my new lab at the University of Michigan opening Jan 2025! 🎉We’ll study how cells work together to shape the GI tract, with ties to regeneration & disease. Hiring at all levels—esp. a research tech to help launch the lab! Info: huyckelab.org #DevBio #CellBio #Hiring
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austin (he/him) @austinjgraham.bsky.social · 16/12/2024
our new preprint is live – check out our nifty MAGIC matrices! (1/7) www.biorxiv.org/content/10.1...
biorxiv.org
MAGIC matrices: freeform bioprinting materials to support complex and reproducible organoid morphogenesis
Organoids are powerful models of tissue physiology, yet their applications remain limited due to their relatively simple morphology and high organoid-to-organoid structural variability. To address the...
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