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Updated: Aug 20, 2026

A Fluorescence-based Protocol for Preliminary Screening of Protein Synthesis Inhibitors from Natural Sources
Published on: January 27, 2026
Proteasome inhibition in the treatment of cancer
Paul G Richardson1, Constantine Mitsiades, Teru Hideshima
1Dana-Farber Cancer Institute, Department of Adult Oncology, Boston, Massahusetts 02115, USA. paul_richardson@dfci.harvard.edu
Abstract:
The proteasome is the main extralysosomal system involved in intracellular proteolysis. A number of proteasome substrates, including cyclins, IkappaB, and p53, are critical to cell cycle progression and apoptosis. Interruption of the degradation of these substrates through proteasome inhibition is a novel and unique approach to the treatment of malignancies. First-generation proteasome inhibitors lacked usefulness because of broad specificity and irreversible binding to the proteasome. However, the later synthesis of the peptide boronic acid proteasome inhibitor bortezomib allowed for selective, reversible binding. Basic investigations have reported the antitumor activity of bortezomib in a variety of hematologic and solid tumor models and have demonstrated the ability of bortezomib to enhance chemosensitivity and overcome cellular mechanisms of drug resistance attributable, in part, to abrogation of NF-kappaB induction. In patients with relapsed, refractory multiple myeloma who had received a median of six prior regimens, treatment with bortezomib resulted in a 35% response rate (complete plus partial plus minimal response) using criteria of the European Group for Blood and Marrow Transplantation. Encouraging activity has been demonstrated with bortezomib in the first-line treatment of myeloma and in patients with mantle cell lymphoma. Investigations of its utility in the treatment of patients with solid tumors are ongoing.
Insights
Bortezomib, a proteasome inhibitor, shows promise in treating cancers by selectively blocking protein degradation. This novel approach demonstrated significant response rates in multiple myeloma patients, offering a new therapeutic strategy for malignancies.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- The proteasome is a key system for intracellular protein degradation.
- Proteasome substrates like cyclins, IkappaB, and p53 regulate cell cycle and apoptosis.
- Targeting proteasome substrates offers a novel strategy for cancer treatment.
Purpose of the Study:
- To evaluate the therapeutic potential of proteasome inhibition, specifically bortezomib, in malignancies.
- To assess bortezomib's efficacy in preclinical models and clinical trials.
- To investigate bortezomib's role in overcoming drug resistance and enhancing chemosensitivity.
Main Methods:
- Development of selective proteasome inhibitors, exemplified by bortezomib (a peptide boronic acid).
- Preclinical studies in hematologic and solid tumor models.
- Clinical trials in patients with relapsed/refractory multiple myeloma and mantle cell lymphoma.
Main Results:
- Bortezomib exhibits antitumor activity in various cancer models.
- It enhances chemosensitivity and overcomes drug resistance, partly by inhibiting NF-kappaB induction.
- A 35% response rate was observed in heavily pretreated multiple myeloma patients.
Conclusions:
- Bortezomib represents a significant advancement over first-generation inhibitors due to its selective and reversible binding.
- It shows encouraging efficacy in multiple myeloma and mantle cell lymphoma.
- Further investigation into bortezomib's utility in solid tumors is warranted.
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