...
Friday, March 6, 2026
.
1M+
.
website counter widget
.
.
More
    Friday, March 6, 2026
    1M+ Views
    ...
    website counter
    ...
    ...
    More

      A multi-dimensional omics framework identifies GPR35 as a driver of M2 macrophage activation and poor prognosis in colorectal cancer – Research



      Introduction:

      Colorectal cancer (CRC) remains a leading cause of global cancer mortality, with therapeutic outcomes heavily reliant on the tumor microenvironment (TME). While immunotherapy has revolutionized treatment for distinct subsets, the mechanisms driving immune evasion in the majority of patients remain elusive.


      Methods:

      In this study, we constructed a comprehensive single-cell atlas of the CRC TME by integrating multi-cohort scRNA-seq data.


      Results:

      Through non-negative matrix factorization (NMF), we identified nine intratumoral heterogeneity meta-programs (MPs), among which MP8 was robustly linked to M2 macrophage activation. High-dimensional WGCNA further pinpointed GPR35 as a master regulator within the MP8-associated gene network. Clinical analysis across four independent cohorts validated GPR35 as a significant predictor of poor prognosis. Functionally, GPR35 knockdown in vitro markedly impaired CRC cell proliferation, migration, and invasion. Mechanistically, high GPR35 expression orchestrated an immune-excluded microenvironment characterized by diminished cytotoxic T cell and NK cell recruitment, yet paradoxically elevated immune checkpoint expression. Furthermore, GPR35 expression was negatively correlated with eight established immunotherapy response signatures and associated with aggressive mutational landscapes.


      Discussion:

      Collectively, our findings identify GPR35 as a novel cancer cell-intrinsic driver of immune evasion and immunotherapy resistance, positioning it as a promising therapeutic target to sensitize “cold” CRC tumors to immune checkpoint blockade.


      Keywords:

      GPR35; NMF (nonnegative matrix factorization); machine learning (ML); multi-omcis; tumor microenveronment (TME).



      Read more about this post…

      Credits: Source

      Disclaimer

      [td_block_social_counter facebook="/groups/facultypositions" twitter="Drafs007" style="style1" tdc_css="eyJhbGwiOnsibWFyZ2luLWJvdHRvbSI6IjUwIiwiZGlzcGxheSI6IiJ9LCJsYW5kc2NhcGUiOnsibWFyZ2luLWJvdHRvbSI6IjQwIiwiZGlzcGxheSI6IiJ9LCJsYW5kc2NhcGVfbWF4X3dpZHRoIjoxMTQwLCJsYW5kc2NhcGVfbWluX3dpZHRoIjoxMDE5LCJwb3J0cmFpdCI6eyJtYXJnaW4tYm90dG9tIjoiMzAiLCJkaXNwbGF5IjoiIn0sInBvcnRyYWl0X21heF93aWR0aCI6MTAxOCwicG9ydHJhaXRfbWluX3dpZHRoIjo3NjgsInBob25lIjp7Im1hcmdpbi1ib3R0b20iOiIzNSIsImRpc3BsYXkiOiIifSwicGhvbmVfbWF4X3dpZHRoIjo3Njd9" custom_title="Join us" manual_count_facebook="28500" manual_count_twitter="400" open_in_new_window="y" manual_count_youtube="600" youtube="/@scholarships4all"]

      Local Weather

      New York
      overcast clouds
      3.2 ° C
      3.2 °
      3.2 °
      83 %
      4.1kmh
      99 %
      Sat
      6 °
      Sun
      14 °
      Mon
      14 °
      Tue
      18 °
      Wed
      11 °

      Web Hits

      website counter

      Visitor Count

      hit counter

      In-Service

      AF.com AI Powered 7-years

      Latest Posts

      spot_imgspot_img

      Textbooks Challenged: Scientists Discover New Mechanism of Cell Division – Science News

      Scientists have uncovered a new way embryonic cells divide when conventional mechanisms fail. Cell division underpins all forms of life, but scientists have long...

      Related articles

      Leave a reply

      Please enter your comment!
      Please enter your name here

      spot_imgspot_img
      Privacy Overview

      This website uses cookies so that we can provide you with the best user experience possible. Cookie information is stored in your browser and performs functions such as recognising you when you return to our website and helping our team to understand which sections of the website you find most interesting and useful.