Targeting ER dynamics: a novel strategy for antitumor immunity

March 03, 2025 11:17 PM AEDT | By EIN Presswire
 Targeting ER dynamics: a novel strategy for antitumor immunity
Image source: EIN Presswire

GA, UNITED STATES, March 3, 2025 /EINPresswire.com/ -- A groundbreaking study has revealed that reticulon-4 (RTN4), a protein involved in regulating the endoplasmic reticulum (ER) membrane curvature, plays a pivotal role in pyroptosis, a form of programmed cell death. The research demonstrates how manipulating RTN4 can trigger pyroptosis in cancer cells, enhancing antitumor immune responses. By targeting RTN4, the ER membrane undergoes significant remodeling, leading to the formation of the typical "bubble" structures associated with pyroptosis. This discovery not only advances our understanding of the molecular mechanisms behind pyroptosis but also introduces a promising new approach for anticancer immunotherapy.

Pyroptosis, a highly inflammatory type of programmed cell death, has garnered attention for its potential in cancer treatment. Characterized by cell swelling and the formation of "bubble" structures, pyroptosis is closely linked to the dynamics of the endoplasmic reticulum (ER). Despite growing interest, the precise mechanisms by which the ER triggers pyroptosis remain poorly understood, and the development of effective small molecules to induce this form of cell death has been limited. Given the importance of this process in cancer progression, understanding ER-associated pyroptosis has become a critical area of research.

In a study (DOI: 10.1093/procel/pwae049) published on September 10, 2024, in Protein & Cell, researchers from Peking University and Peking University People's Hospital elucidated a novel mechanism connecting ER membrane remodeling to pyroptosis. Their findings reveal that by targeting reticulon-4 (RTN4), a key regulator of ER membrane curvature, it is possible to induce pyroptosis in cancer cells and promote antitumor immunity.

The researchers used a biotin-labeled chemical probe, α-mangostin (α-MG), to identify RTN4 as a crucial player in ER membrane curvature regulation. α-MG induces RTN4 degradation through the ubiquitin-proteasome system by recruiting the E3 ligase UBR5, triggering extensive ER remodeling. This degradation results in a shift in ER morphology from tubules to sheets, facilitating ER fusion with the plasma membrane and the formation of the typical "bubble" structures of pyroptotic cells. Further investigation revealed that RTN4 deficiency activates the caspase-3/GSDME pathway, driving pyroptosis. In vivo studies demonstrated that RTN4 knockdown significantly inhibited tumor growth and enhanced immune responses, particularly when combined with anti-PD-1 therapy. The study also highlighted α-MG as a potential small molecule degrader of RTN4, underscoring its therapeutic potential in cancer treatment.

Dr. Ke-Wu Zeng, one of the study’s corresponding authors, emphasized the transformative nature of these findings: Our research identifies RTN4 as a critical regulator of pyroptosis through its role in ER membrane dynamics. Targeting RTN4 can induce a potent antitumor immune response, offering a prospective strategy for anticancer immunotherapy.

The discovery of RTN4 as a druggable target for pyroptosis opens new possibilities for cancer treatment. Small molecules such as α-MG, which degrade RTN4, could be developed into novel anticancer agents. Furthermore, the synergistic effect of RTN4 degradation with immune checkpoint inhibitors like anti-PD-1 therapy highlights the potential for combination therapies to improve antitumor efficacy. This research lays the foundation for future clinical applications targeting ER dynamics to combat cancer.

DOI
10.1093/procel/pwae049

Original Source URL
https://doi.org/10.1093/procel/pwae049

Funding information
This work was financially supported by National Natural Science Foundation of China (82325050), National Key R&D Program of China (2022YFC3501601), Beijing Municipal Natural Science Foundation (7232273), Jinan New 20 Policies for Higher Education Funding (202228048), and Natural Science Foundation of Shandong Province (Joint Foundation for Innovation and Development) (ZR2022LZY021).

Lucy Wang
BioDesign Research
email us here

Legal Disclaimer:

EIN Presswire provides this news content "as is" without warranty of any kind. We do not accept any responsibility or liability for the accuracy, content, images, videos, licenses, completeness, legality, or reliability of the information contained in this article. If you have any complaints or copyright issues related to this article, kindly contact the author above.


Disclaimer

The content, including but not limited to any articles, news, quotes, information, data, text, reports, ratings, opinions, images, photos, graphics, graphs, charts, animations and video (Content) is a service of Kalkine Media Pty Ltd (“Kalkine Media, we or us”), ACN 629 651 672 and is available for personal and non-commercial use only. The principal purpose of the Content is to educate and inform. The Content does not contain or imply any recommendation or opinion intended to influence your financial decisions and must not be relied upon by you as such. Some of the Content on this website may be sponsored/non-sponsored, as applicable, but is NOT a solicitation or recommendation to buy, sell or hold the stocks of the company(s) or engage in any investment activity under discussion. Kalkine Media is neither licensed nor qualified to provide investment advice through this platform. Users should make their own enquiries about any investments and Kalkine Media strongly suggests the users to seek advice from a financial adviser, stockbroker or other professional (including taxation and legal advice), as necessary.
The content published on Kalkine Media also includes feeds sourced from third-party providers. Kalkine does not assert any ownership rights over the content provided by these third-party sources. The inclusion of such feeds on the Website is for informational purposes only. Kalkine does not guarantee the accuracy, completeness, or reliability of the content obtained from third-party feeds. Furthermore, Kalkine Media shall not be held liable for any errors, omissions, or inaccuracies in the content obtained from third-party feeds, nor for any damages or losses arising from the use of such content.
Kalkine Media hereby disclaims any and all the liabilities to any user for any direct, indirect, implied, punitive, special, incidental or other consequential damages arising from any use of the Content on this website, which is provided without warranties. The views expressed in the Content by the guests, if any, are their own and do not necessarily represent the views or opinions of Kalkine Media. Some of the images/music that may be used on this website are copyrighted to their respective owner(s). Kalkine Media does not claim ownership of any of the pictures displayed/music used on this website unless stated otherwise. The images/music that may be used on this website are taken from various sources on the internet, including paid subscriptions or are believed to be in public domain. We have made reasonable efforts to accredit the source wherever it was indicated as or found to be necessary.
This disclaimer is subject to change without notice. Users are advised to review this disclaimer periodically for any updates or modifications.


AU_advertise

Advertise your brand on Kalkine Media

Sponsored Articles


Investing Ideas

Previous Next
We use cookies to ensure that we give you the best experience on our website. If you continue to use this site we will assume that you are happy with it.