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Treating Multiple Myeloma and Diffuse Large B Cell Lymphoma by Targeting the NF-kB Pathway with the First-in-Class GADD45b/MKK7 Inhibitor, DTP3

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AI plain-English summary

A newly developed compound, DTP3, kills multiple myeloma cancer cells by breaking apart a protein pair that normally blocks their self-destruction. This matters because multiple myeloma—a cancer of antibody-producing white blood cells—remains incurable. Existing treatments like bortezomib cannot eliminate all cancer cells, so patients inevitably relapse. Most of the 110,000 people diagnosed annually in the US, Europe, and Japan die within about five years. The disease attacks bone, reduces blood cell counts, and weakens immune defences, and cannot be treated with surgery or radiotherapy. DTP3 targets the interaction between two proteins, Gadd45b and MKK7, which together stop cancer cells from undergoing programmed cell death. In laboratory tests, DTP3 killed multiple myeloma cells effectively while leaving normal cells unharmed—a stark contrast to current therapies that cause severe side effects and limit dosing. If DTP3 succeeds in early-stage clinical trials, it could become the basis for a non-toxic drug therapy for multiple myeloma and potentially other cancers where the same protein pair keeps tumour cells alive. The team also plans to develop a diagnostic test to identify patients most likely to benefit.

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Professor Guido Franzoso and his colleagues at Imperial College London have discovered a new way of tackling multiple myeloma, an incurable cancer of the white blood cells, which are normally responsible for producing 'antibodies,' that attacks and destroys bone, which could offer a cure for this disease. The treatments that currently exist for multiple myeloma have severe side effects that limit the doses that can be given to patients. The most recent treatment, bortezomib (Velcade), cannot completely destroy the cancer, allowing some of the cancer cells to escape this treatment and so, whilst the disease can be temporarily stabilised, relapse is unfortunately inevitable. Because of an increased number of antibody-producing white blood cells, patients generally have high levels of a single type of antibody called 'M-protein' in their blood and/or urine. These patients often also have reduced blood cell counts and decreased amounts of normal antibodies, which compromises their body's immune defenses against infection. As a result of these and other complications, most of the 110,000 people diagnosed each year with the disease in the US, Europe and Japan will die within about five years of diagnosis. This blood borne cancer cannot be treated using radiotherapy or surgery and so the options are restricted to chemotherapy or bone marrow transplant. Prof. Franzoso's team discovered a new protein, called Gadd45b, which forms one half of a crucial signalling point within cells. An enzyme called MKK7 controls traffic through a second signalling pathway (JNK) that forms the other half of this focal signalling point. When bound together, the two Gadd45b and MKK7 proteins stop the signals that tell the cancerous cells to activate a form of cellular suicide known to specialists as 'apoptosis', thus allowing them to multiply uncontrollably. The team has since developed a novel compound molecule, DTP3, which specifically disrupts the relationship and interaction between Gadd45b and MKK7, and in so doing kills the cancerous cells effectively but, perhaps most importantly, completely lacks toxicity to the normal cells. This unique property makes DTP3 an exciting starting point in the search for a new effective drug therapy against multiple myeloma. The goal of the research team is now to progress DTP3 to an early stage clinical study in patients suffering from multiple myeloma in order to test the drug in man and ultimately develop an effective therapy with no toxicity, alongside a diagnostic test, for multiple myeloma and potentially other cancers where the Gadd45b and MKK7 proteins are responsible for keeping the tumour cells alive.

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Researchers

Andrew Davies (Co-Investigator)Ceri Bygrave (Co-Investigator)Christina Yap (Co-Investigator)Christopher Fox (Co-Investigator)Gordon Cook (Co-Investigator)Guido Franzoso (Principal Investigator)Holger Auner (Co-Investigator)Iain McNeish (Co-Investigator)John Radford (Co-Investigator)Peter Johnson (Co-Investigator)Rakesh Popat (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Treating Multiple Myeloma by Targeting the NF-Kappa-B Pathway with Gadd45-Beta/MKK7 Inhibitors
Development of Gadd45b-Targeting Agents for Multiple Myeloma Therapy
Treating Multiple Myeloma and Diffuse Large B Cell Lymphoma by Targeting the NF-?B Pathway with the First-in-Class GADD45?/MKK7 Inhibitor, DTP3
DTP3 2021: Treating Multiple Myeloma and Diffuse Large B Cell Lymphoma by Targeting the NF-?B Pathway with the First-in-Class GADD45?/MKK7 Inhibitor, DTP3
Treating Multiple Myeloma and Diffuse Large B Cell Lymphoma by Targeting the NF-κB Pathway with the First-in-Class GADD45β/MKK7 Inhibitor, DTP3

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Research Grant

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