#SAMD9L
Structural mechanisms of SAMD9 autoinhibition and pathogenic dysregulation | Science Advances www.science.org/doi/10.1126/...
Structural mechanisms of SAMD9 autoinhibition and pathogenic dysregulation
SAMD9 and SAMD9L (SAMD9/9L) are large cytosolic proteins essential for hematopoietic homeostasis and antiviral defense (1–3). Germline gain-of-function (GoF) mutations in SAMD9/9L cause severe multisy...
www.science.org
September 24, 2026 at 11:23 PM
#ResultatScientifique 🔎 Certains gènes antiviraux humains partagent des défenses communes avec les bactéries, révélant une convergence évolutive surprenante 🧬
✍️ Alexandre Legrand et @lucievirevolte.bsky.social
📕 Nature Ecology and Evolution
buff.ly/Su0EdiU
Défenses immunitaires : une invention répétée au cours de l’évolution
Dans une étude publiée dans Nature Ecology and Evolution, des scientifiques montrent que les gènes SAMD9 et SAMD9L, a
www.insb.cnrs.fr
November 12, 2025 at 9:00 AM
Congrats on the SAMD9L study! Long time in the making! So happy for you!
February 20, 2025 at 11:43 PM
Cryo-EM structures of SAMD9L reveal the arrangement and coordination of multi-domains www.biorxiv.org/content/10.64898/2026.02.01.703102v1 #cryoem
February 3, 2026 at 8:10 AM
SAMD9L inhibits flavivirus translation independently of its capacity to trigger innate immune response PLOSPathogens
SAMD9L inhibits flavivirus translation independently of its capacity to trigger innate immune response
by Marion Cannac, Jim Zoladek, Inès Bribes, Mathis Fresneau--Resende, Alexandre Legrand, Rémi Demeure, Eva Zusinaite, Andres Merits, Lucie Etienne, Sébastien Nisole Interferon-stimulated genes (ISGs) play a pivotal role in the innate immune response to viral infection. Among them, SAMD9 and its paralog SAMD9L have recently emerged as important antiviral effectors with translation-inhibitory activity. While both proteins restrict poxvirus, rotavirus and reovirus replication, only SAMD9L has been shown to inhibit HIV and other lentiviruses. In this study, we identify human SAMD9L as a potent and broad-spectrum restriction factor that targets multiple medically relevant flaviviruses, including West Nile virus (WNV), Zika virus (ZIKV), dengue virus (DENV), and Usutu virus (USUV). Exogenous expression of SAMD9L, but not SAMD9, efficiently suppressed replication of all tested flaviviruses. Furthermore, its knockdown in human myeloid cells, including microglial cells and primary macrophages, impaired the antiviral activity of type I interferon, identifying SAMD9L as a key antiviral ISG in primary target cells of flavivirus infection. Mechanistically, we demonstrate that SAMD9L inhibits viral replication by targeting the translation of flaviviral RNA, and that this activity depends on its Schlafen-like ribonuclease domain, previously implicated in the inhibition of HIV-1 translation. Interestingly, although SAMD9 does not inhibit flavivirus replication, it is able to repress the translation of flaviviral RNA outside the context of infection, suggesting that its activation may be virus-specific or that flaviviruses have evolved mechanisms to evade or counteract SAMD9’s antiviral activity. Finally, we confirm that SAMD9 and SAMD9L overexpression induces activation of the innate immune response. However, this immunostimulatory function is dispensable for SAMD9L-mediated antiviral activity, since SAMD9L is able to restrict flavivirus replication independently of innate immune activation. Together, our findings broaden the known antiviral repertoire of SAMD9L, establish its essential role in restricting flavivirus replication via translational repression, and highlight its function as a key component of the cellular defenses against flaviviruses in myeloid cells.
dlvr.it
December 11, 2025 at 10:06 AM
A great (in-person!) meeting of the MM-VCEP #ClinGen group today at #ASH24. Lots of exciting projects and milestones for the group on the horizon including making rules for new genes (SAMD9/SAMD9L/TERT/TERC..) as well as progress on our DDX41 curation rules. Stay tuned..
December 7, 2024 at 4:44 AM
The authors included RRIDs in their in PLOS Pathogens paper! We value the author's support of reproducibility. #methodsmatter #methodsmatter #STMpublishing
SAMD9L inhibits flavivirus translation independently of its capacity to trigger innate immune response
doi.org
February 5, 2026 at 6:01 PM
💡 Today's question! See the answer and explanation on the next slide.

#IBMFS #MDS #SAMD9 #SAMD9L #BoneMarrowFailure #Hematology #HemeOnc #InheritedDisorders #HEMEHUB
January 15, 2026 at 2:13 AM
SAMD9L inhibits flavivirus translation independently of its capacity to trigger innate immune response PLOSPathogens
SAMD9L inhibits flavivirus translation independently of its capacity to trigger innate immune response
by Marion Cannac, Jim Zoladek, Inès Bribes, Mathis Fresneau--Resende, Alexandre Legrand, Rémi Demeure, Eva Zusinaite, Andres Merits, Lucie Etienne, Sébastien Nisole Interferon-stimulated genes (ISGs) play a pivotal role in the innate immune response to viral infection. Among them, SAMD9 and its paralog SAMD9L have recently emerged as important antiviral effectors with translation-inhibitory activity. While both proteins restrict poxvirus, rotavirus and reovirus replication, only SAMD9L has been shown to inhibit HIV and other lentiviruses. In this study, we identify human SAMD9L as a potent and broad-spectrum restriction factor that targets multiple medically relevant flaviviruses, including West Nile virus (WNV), Zika virus (ZIKV), dengue virus (DENV), and Usutu virus (USUV). Exogenous expression of SAMD9L, but not SAMD9, efficiently suppressed replication of all tested flaviviruses. Furthermore, its knockdown in human myeloid cells, including microglial cells and primary macrophages, impaired the antiviral activity of type I interferon, identifying SAMD9L as a key antiviral ISG in primary target cells of flavivirus infection. Mechanistically, we demonstrate that SAMD9L inhibits viral replication by targeting the translation of flaviviral RNA, and that this activity depends on its Schlafen-like ribonuclease domain, previously implicated in the inhibition of HIV-1 translation. Interestingly, although SAMD9 does not inhibit flavivirus replication, it is able to repress the translation of flaviviral RNA outside the context of infection, suggesting that its activation may be virus-specific or that flaviviruses have evolved mechanisms to evade or counteract SAMD9’s antiviral activity. Finally, we confirm that SAMD9 and SAMD9L overexpression induces activation of the innate immune response. However, this immunostimulatory function is dispensable for SAMD9L-mediated antiviral activity, since SAMD9L is able to restrict flavivirus replication independently of innate immune activation. Together, our findings broaden the known antiviral repertoire of SAMD9L, establish its essential role in restricting flavivirus replication via translational repression, and highlight its function as a key component of the cellular defenses against flaviviruses in myeloid cells.
dlvr.it
December 10, 2025 at 3:05 AM
From Patient Advocacy to Innovative Research: Nathan Ehrlich and jinIX Foundation Revolutionize Rare Disease Studies#United_States#San_Francisco#SAMD9L#jinIX#Nathan_Ehrlich
From Patient Advocacy to Innovative Research: Nathan Ehrlich and jinIX Foundation Revolutionize Rare Disease Studies
The jinIX Foundation honors Nathan Ehrlich, a courageous advocate for rare disease research, as he leads a movement to change patient-led clinical trials and enhance medical support.
third-news.com
May 8, 2025 at 12:45 PM
Cryo-EM structures of SAMD9L reveal the arrangement and coordination of multi-domains https://www.biorxiv.org/content/10.64898/2026.02.01.703102v1
February 3, 2026 at 1:45 AM
Cryo-EM structures of SAMD9L reveal the arrangement and coordination of multi-domains https://www.biorxiv.org/content/10.64898/2026.02.01.703102v1
February 3, 2026 at 1:45 AM
Comparing the thylacine genome to the Tasmanian devil, the researchers discovered the loss of several genes, including SAMD9L and HSD17B13, coinciding with the thylacine's shift towards a more carnivorous diet and larger body size.
October 28, 2025 at 1:57 AM