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Targeting cancer via Golgi α-mannosidase II inhibition: How far have we come in developing effective inhibitors?
Zheng Yang Lee1, Jason Siau Ee Loo2, Agustono Wibowo3
1School of Pharmacy, Faculty of Health & Medical Sciences, Taylor's University, 1, Jalan Taylors, 47500, Subang Jaya, Selangor, Malaysia.
Abstract:
Dysregulation of glycosylation pathways has been well documented in several types of cancer, where it often participates in cancer development and progression, especially cancer metastasis. Hence, inhibition of glycosidases such as mannosidases can disrupt the biosynthesis of glycans on cell surface glycoproteins and modify their role in carcinogenesis and metastasis. Several reviews have delineated the role of N-glycosylation in cancer, but the data regarding effective inhibitors remains sparse. Golgi α-mannosidase has been an attractive therapeutic target for preventing the formation of ß1,6-branched complex type N-glycans. However, due to its high structural similarity to the broadly specific lysosomal α-mannosidase, undesired co-inhibition occurs and this leads to serious side effects that complicates its potential role as a therapeutic agent. Even though extensive efforts have been geared towards the discovery of effective inhibitors, no breakthrough has been achieved thus far which could allow for their use in clinical settings. Improving the specificity of current inhibitors towards Golgi α-mannosidase is requisite in progressing this class of compounds in cancer chemotherapy. In this review, we highlight a few potent and selective inhibitors discovered up to the present to guide researchers for rational design of further effective inhibitors to overcome the issue of specificity.
Insights
Targeting cancer metastasis requires specific inhibitors of Golgi α-mannosidase. Current inhibitors lack specificity, causing side effects. This review highlights potent, selective inhibitors to guide future cancer chemotherapy drug design.
Area of Science:
- Biochemistry
- Glycobiology
- Cancer Research
Background:
- Aberrant glycosylation is a hallmark of cancer, driving tumor progression and metastasis.
- Mannosidases, particularly Golgi α-mannosidase, are key targets for disrupting cancer-associated glycan biosynthesis.
- Existing reviews focus on N-glycosylation in cancer, but effective inhibitor data is limited.
Purpose of the Study:
- To review potent and selective inhibitors of Golgi α-mannosidase.
- To guide rational drug design for improved specificity in cancer therapy.
- To address the challenge of co-inhibition with lysosomal α-mannosidase.
Main Methods:
- Literature review of scientific publications on Golgi α-mannosidase inhibitors.
- Analysis of inhibitor potency and selectivity data.
- Discussion of structural similarities and challenges in targeting Golgi α-mannosidase.
Main Results:
- Several potent and selective Golgi α-mannosidase inhibitors have been identified.
- Challenges remain in achieving high specificity due to structural homology with lysosomal α-mannosidase.
- No inhibitors have reached clinical application due to specificity and side effect concerns.
Conclusions:
- Specific inhibition of Golgi α-mannosidase is crucial for targeting cancer metastasis.
- Improving inhibitor specificity is essential for clinical translation in cancer chemotherapy.
- Further research into rational inhibitor design is needed to overcome current limitations.
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