Characterization of Multiple Omics Signatures in Relation to Dietary Pattern for in Silico Personalised Colon Cancer Risk Stratification: Study Protocol for a Case-control Study and the Challenges Faced During the COVID-19 Pandemic

Nur Mahirah Amani Mohammad, M. Shahril, S. Shahar, N. Rajab, R. R. Raja Ali, Z. M. Mohd Azman, S. Baharum, Abrar Noor Akramin Kamarudin, F. Chung, R. Sharif
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Abstract

Background: Personalised nutrition and medicine are the future of healthcare. In relation to cancer, public and healthcare professionals often seek dietary recommendations for cancer prevention. Among the important cancers that can be prevented by diet and lifestyle is colorectal cancer (CRC). CRC is one of the commonest cancers globally, and is a major health concern in Malaysia as it presents with high mortality and morbidity rates, causing a significant socioeconomic burden to the country. While extensive research has been conducted on the treatment and mechanisms of cancer, there have been no reports on the associations between metabolites, novel biomarkers of cancer, and dietary patterns in the context of cancer prevention in the Malaysian multiethnic population. Methods: A case control study will be conducted in Malaysia, involving patients diagnosed with CRC, colorectal adenoma and a group of healthy participants. Multiple endpoints will be analyzed, namely metabolomic signatures, epigenetic marks, inflammatory markers and relationship with dietary patterns will be established. Multiple machine learning models will then be used to develop personalised risk stratification algorithms. Recruitment began in July 2019 and is ongoing due to COVID-19 pandemic. Discussion: This study will be the first to identify alterations in metabolites, inflammatory markers and epigenetic marks associated with dietary patterns and CRC risk in Malaysia. Understanding on how dietary patterns influence CRC risk in the multi-ethnic Malaysian population and identification of novel oncometabolites for CRC risk, will allow for development of personalised evidence-based recommendations in reducing individual risks of CRC.
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与饮食模式相关的多组学特征表征与计算机个体化结肠癌风险分层:病例对照研究的研究方案以及COVID-19大流行期间面临的挑战
背景:个性化营养和药物是医疗保健的未来。关于癌症,公众和保健专业人员经常寻求预防癌症的饮食建议。结直肠癌是可以通过饮食和生活方式预防的重要癌症之一。结直肠癌是全球最常见的癌症之一,是马来西亚的一个主要健康问题,因为它具有高死亡率和发病率,给该国造成了重大的社会经济负担。虽然对癌症的治疗和机制进行了广泛的研究,但在马来西亚多民族人群中,没有关于代谢物、新型癌症生物标志物和饮食模式在预防癌症方面的联系的报道。方法:将在马来西亚进行病例对照研究,包括诊断为结直肠癌、结直肠腺瘤的患者和一组健康参与者。将分析多个终点,即代谢组学特征、表观遗传标记、炎症标记以及与饮食模式的关系。然后,将使用多个机器学习模型来开发个性化的风险分层算法。招聘于2019年7月开始,由于COVID-19大流行,目前仍在进行中。讨论:这项研究将首次确定马来西亚与饮食模式和结直肠癌风险相关的代谢物、炎症标志物和表观遗传标记的改变。了解饮食模式如何影响马来西亚多民族人群的结直肠癌风险,以及识别结直肠癌风险的新型肿瘤代谢物,将有助于制定个性化的循证建议,以降低结直肠癌的个体风险。
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