The advancement of artificial intelligence in biomedical research and health innovation: challenges and opportunities in emerging economies.

IF 5.9 2区 医学 Q1 PUBLIC, ENVIRONMENTAL & OCCUPATIONAL HEALTH
Renan Gonçalves Leonel da Silva
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Abstract

The advancement of artificial intelligence (AI), algorithm optimization and high-throughput experiments has enabled scientists to accelerate the discovery of new chemicals and materials with unprecedented efficiency, resilience and precision. Over the recent years, the so-called autonomous experimentation (AE) systems are featured as key AI innovation to enhance and accelerate research and development (R&D). Also known as self-driving laboratories or materials acceleration platforms, AE systems are digital platforms capable of running a large number of experiments autonomously. Those systems are rapidly impacting biomedical research and clinical innovation, in areas such as drug discovery, nanomedicine, precision oncology, and others. As it is expected that AE will impact healthcare innovation from local to global levels, its implications for science and technology in emerging economies should be examined. By examining the increasing relevance of AE in contemporary R&D activities, this article aims to explore the advancement of artificial intelligence in biomedical research and health innovation, highlighting its implications, challenges and opportunities in emerging economies. AE presents an opportunity for stakeholders from emerging economies to co-produce the global knowledge landscape of AI in health. However, asymmetries in R&D capabilities should be acknowledged since emerging economies suffers from inadequacies and discontinuities in resources and funding. The establishment of decentralized AE infrastructures could support stakeholders to overcome local restrictions and opens venues for more culturally diverse, equitable, and trustworthy development of AI in health-related R&D through meaningful partnerships and engagement. Collaborations with innovators from emerging economies could facilitate anticipation of fiscal pressures in science and technology policies, obsolescence of knowledge infrastructures, ethical and regulatory policy lag, and other issues present in the Global South. Also, improving cultural and geographical representativeness of AE contributes to foster the diffusion and acceptance of AI in health-related R&D worldwide. Institutional preparedness is critical and could enable stakeholders to navigate opportunities of AI in biomedical research and health innovation in the coming years.

人工智能在生物医学研究和健康创新中的发展:新兴经济体的挑战与机遇。
人工智能(AI)、算法优化和高通量实验的进步使科学家们能够以前所未有的效率、弹性和精度加速发现新的化学物质和材料。近年来,所谓的自主实验(AE)系统作为关键的人工智能创新技术,在加强和加速研发(R&D)方面大放异彩。AE 系统也被称为自动驾驶实验室或材料加速平台,是能够自主运行大量实验的数字化平台。这些系统正迅速影响着药物发现、纳米医学、精准肿瘤学等领域的生物医学研究和临床创新。由于预期 AE 将从地方到全球层面影响医疗保健创新,因此应研究其对新兴经济体科学和技术的影响。通过研究人工智能在当代研发活动中日益增长的相关性,本文旨在探讨人工智能在生物医学研究和医疗创新中的发展,强调其对新兴经济体的影响、挑战和机遇。人工智能为新兴经济体的利益相关者提供了一个共同创造全球人工智能健康知识版图的机会。然而,由于新兴经济体在资源和资金方面存在不足和不连续性,因此应认识到研发能力的不对称。建立分散的人工智能基础设施可以支持利益相关者克服地方限制,并通过有意义的合作和参与,为人工智能在健康相关研发领域的发展开辟更加文化多元、公平和可信的途径。与新兴经济体的创新者合作,可以帮助预测科技政策的财政压力、知识基础设施的过时、伦理和监管政策的滞后,以及全球南部存在的其他问题。此外,提高人工智能的文化和地域代表性有助于促进人工智能在全球健康相关研发领域的传播和接受。机构的准备工作至关重要,可帮助利益相关者在未来几年把握人工智能在生物医学研究和健康创新中的机遇。
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来源期刊
Globalization and Health
Globalization and Health PUBLIC, ENVIRONMENTAL & OCCUPATIONAL HEALTH-
CiteScore
18.40
自引率
1.90%
发文量
93
期刊介绍: "Globalization and Health" is a pioneering transdisciplinary journal dedicated to situating public health and well-being within the dynamic forces of global development. The journal is committed to publishing high-quality, original research that explores the impact of globalization processes on global public health. This includes examining how globalization influences health systems and the social, economic, commercial, and political determinants of health. The journal welcomes contributions from various disciplines, including policy, health systems, political economy, international relations, and community perspectives. While single-country studies are accepted, they must emphasize global/globalization mechanisms and their relevance to global-level policy discourse and decision-making.
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