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Harnessing the therapeutic potential of antibodies targeting connexin hemichannels
Damiano Buratto1, Viola Donati2, Francesco Zonta1
1Shanghai Institute for Advanced Immunochemical Studies, ShanghaiTech University, Shanghai 201210, China.
Insights
Antibodies targeting connexin hemichannels show promise for treating diseases like cancer and diabetes. Research is advancing towards more specific monoclonal antibodies for potential clinical applications.
Area of Science:
- Biochemistry
- Molecular Biology
- Immunology
Background:
- Connexin hemichannels are implicated in various diseases, including inflammation, cancer, diabetes, and rare genetic disorders.
- Pathological conditions are often linked to specific point mutations in connexin proteins.
Purpose of the Study:
- To review literature on antibodies that modulate connexin hemichannel function.
- To highlight antibody generation methods, research applications, and translational potential.
Main Methods:
- Literature analysis focusing on antibodies targeting connexin hemichannels.
- Examination of antibody generation techniques, including phage display.
- Review of applications in basic research and clinical development.
Main Results:
- Over 30 years, antibody development shifted from polyclonal to more selective monoclonal antibodies, primarily targeting connexin 43 for cancer.
- Engineered monoclonal antibodies can now block pathological hemichannels formed by connexin 26, 30, and 32.
- Antibodies target conserved extracellular loops of connexin proteins.
Conclusions:
- New antibody screening platforms offer potential for therapeutic applications against membrane proteins.
- In vivo efficacy and specificity of monoclonal antibodies encourage broader use in treating diseases.
- Anti-hemichannel antibodies hold significant therapeutic potential for currently incurable diseases.
Background:
Connexin hemichannels have been implicated in pathology-promoting conditions, including inflammation, numerous widespread human diseases, including cancer and diabetes, and several rare diseases linked to pathological point mutations.
Methods:
We analysed the literature focusing on antibodies capable of modulating hemichannel function, highlighting generation methods, applications to basic biomedical research and translational potential.
Results:
Anti-hemichannel antibodies generated over the past 3 decades targeted mostly connexin 43, with a focus on cancer treatment. A slow transition from relatively unselective polyclonal antibodies to more selective monoclonal antibodies resulted in few products with interesting characteristics that are under evaluation for clinical trials. Selection of antibodies from combinatorial phage-display libraries, has permitted to engineer a monoclonal antibody that binds to and blocks pathological hemichannels formed by connexin 26, 30 and 32.
Conclusions:
All known antibodies that modulate connexin hemichannels target the two small extracellular loops of the connexin proteins. The extracellular region of different connexins is highly conserved, and few residues of each connexins are exposed. The search for new antibodies may develop an unprecedented potential for therapeutic applications, as it may benefit tremendously from novel whole-cell screening platforms that permit in situ selection of antibodies against membrane proteins in native state. The demonstrated efficacy of mAbs in reaching and modulating hemichannels in vivo, together with their relative specificity for connexins overlapping epitopes, should hopefully stimulate an interest for widening the scope of anti-hemichannel antibodies. There is no shortage of currently incurable diseases for which therapeutic intervention may benefit from anti-hemichannel antibodies capable of modulating hemichannel function selectively and specifically.
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