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共有 34602 条符合本次的查询结果, 用时 1.3436444 秒

1. Underwater kelp forests are losing a turf war.

作者: Holly Smith.
来源: Nature. 2025年642卷8066期40页

2. US-China tariff war threatens global public health.

作者: Sijia Liu.;Jialao Ma.
来源: Nature. 2025年642卷8066期38页

3. NIH grant cuts will axe clinical trials abroad - and could leave thousands without care.

作者: Max Kozlov.
来源: Nature. 2025年

4. See the Milky Way dazzle during a lunar eclipse - May's best science images.

作者: Emma Stoye.
来源: Nature. 2025年

6. Gender equality in research publishing is a responsibility for everyone.

来源: Nature. 2025年

7. Daily briefing: Immune cell 'spies' give the brain information about the gut.

作者: Jacob Smith.
来源: Nature. 2025年

8. Salary negotiations: a guide for scientists.

作者: Julie Gould.
来源: Nature. 2025年

9. Audio long read: Three ways to cool Earth by pulling carbon from the sky.

作者: Jeff Tollefson.;Benjamin Thompson.
来源: Nature. 2025年

10. 'Scienticide' in Argentina sparks huge protest by researchers.

作者: Martín De Ambrosio.;Fermín Koop.
来源: Nature. 2025年

11. Daily briefing: Chemical 'shuttles' carry large drugs across the blood-brain barrier.

作者: Jacob Smith.
来源: Nature. 2025年

12. How a freezing pond could kick-start life's self-replication.

来源: Nature. 2025年

13. Forehead 'e-tattoo' tracks how hard you're thinking.

来源: Nature. 2025年

14. Rare 'ambidextrous' protein breaks rules of handedness.

作者: Ewen Callaway.
来源: Nature. 2025年

15. Black Death bacterium has become less lethal after genetic tweak.

作者: Rachel Fieldhouse.
来源: Nature. 2025年

16. How the natural world is inspiring the robot eyes of the future.

作者: Esme Hedley.
来源: Nature. 2025年

17. Researchers who 'pivot' into new fields should not be given a citation penalty.

来源: Nature. 2025年

18. First Chinese mission to sample an asteroid starts its journey.

作者: Smriti Mallapaty.
来源: Nature. 2025年

19. Mouse liver assembloids model periportal architecture and biliary fibrosis.

作者: Anna M Dowbaj.;Aleksandra Sljukic.;Armin Niksic.;Cedric Landerer.;Julien Delpierre.;Haochen Yang.;Aparajita Lahree.;Ariane C Kühn.;David Beers.;Helen M Byrne.;Sarah Seifert.;Heather A Harrington.;Marino Zerial.;Meritxell Huch.
来源: Nature. 2025年
Modelling liver disease requires in vitro systems that replicate disease progression1,2. Current tissue-derived organoids fail to reproduce the complex cellular composition and tissue architecture observed in vivo3. Here, we describe a multicellular organoid system composed of adult hepatocytes, cholangiocytes and mesenchymal cells that recapitulates the architecture of the liver periportal region and, when manipulated, models aspects of cholestatic injury and biliary fibrosis. We first generate reproducible hepatocyte organoids with functional bile canaliculi network that retain morphological features of in vivo tissue. By combining these with cholangiocytes and portal fibroblasts, we generate assembloids that mimic the cellular interactions of the periportal region. Assembloids are functional, consistently draining bile from bile canaliculi into the bile duct. Strikingly, manipulating the relative number of portal mesenchymal cells is sufficient to induce a fibrotic-like state, independently of an immune compartment. By generating chimeric assembloids of mutant and wild-type cells, or after gene knockdown, we show proof-of-concept that our system is amenable to investigating gene function and cell-autonomous mechanisms. Taken together, we demonstrate that liver assembloids represent a suitable in vitro system to study bile canaliculi formation, bile drainage, and how different cell types contribute to cholestatic disease and biliary fibrosis, in an all-in-one model.

20. Trump's call for 'gold-standard science' has prompted an outcry: here's why.

作者: Jeff Tollefson.;Dan Garisto.
来源: Nature. 2025年
共有 34602 条符合本次的查询结果, 用时 1.3436444 秒