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Real-world evidence and data from currently marketed products drives development of next-generation medical devices and in-vitro diagnostics in real time.
February 26, 2025
By: Mike King
Senior Director, Product and Strategy (Quality, Regulatory, Safety & Detect) Digital Products and Solutions, IQVIA
Connected intelligence and end-to-end quality are significantly transforming the medical device and in-vitro diagnostic (IVD) industries as they shape the future of product development. Traditionally, product development has followed a linear progression from design to clinical trials, regulatory approval, production, distribution, and post-market monitoring. However, this is evolving into a more cyclical, integrated approach in which real-world evidence and data from currently marketed products drives development of next-generation medical devices and in-vitro diagnostics in real time.
The goal of dismantling traditional barriers and fostering a seamless, data-driven ecosystem is to enhance every stage of the product lifecycle process. As a result, the medical device and in-vitro diagnostic industries stand at a transformative crossroads where connected intelligence and end-to-end quality solutions are revolutionizing product development, manufacturing processes and patient care.
As legacy company and industry silos within and across the medical device, IVD, and pharmaceutical arenas continue to blur, particularly with advances in medical device software and artificial intelligence solutions, a new landscape is emerging. For example, data-driven insights from post-market surveillance activities actively shape future innovation and product design iterations. By enabling data to flow freely from post-market processes into the pre-market design and development processes, organizations can accelerate learning, optimize resource allocation, and make more informed decisions at lower costs.
In this new model, post-market insights directly inform future product development. Data from the post-market surveillance (PMS) of medical devices and in-vitro diagnostics and data from pharmacovigilance of new therapies provide crucial information about safety profiles and product quality issues. But instead of treating this as the end of the process, these insights flow back to influence the design and production of next-generation products.
The key innovation is transforming what was once a linear pipeline into a continuous feedback loop. Real-world data about product quality, safety, and usage patterns becomes a vital input for future development, creating a self-improving cycle of innovation and refinement. This integrated approach ensures that insights from today’s market directly influence the development of future products, resulting in improved outcomes throughout the lifecycle. Improvements in the quality and quantity of real-world data that can be brought into product design processes have the potential to accelerate global product approvals.
Connected intelligence in medical devices and in-vitro diagnostics represents a fundamental shift from linear development processes to a circular, continuously improving system. Rather than viewing product lifecycles as a straight line from design through end-of-life, modern medical device companies are “bending the ends together” to create a closed loop where real-world performance data derived from devices and the patients using them actively informs future development.
Imagine a modern glucose monitoring system for managing diabetes that operates in a closed loop. These sophisticated devices don’t just measure blood glucose levels, they analyze patient activity patterns, meal timing and physiological responses to automatically adjust insulin delivery. The system’s intelligence comes from its ability to learn from individual patient experiences, aggregate data across user populations, and continuously refine its algorithms for better outcomes.
The evolution of medical device and IVD technology has effectively dismantled traditional industry silos. Today’s solutions increasingly combine hardware, software, and therapeutic elements in ways that challenge conventional categorization. Software as a Medical Device (SaMD) has become a crucial component of many treatment solutions, while artificial intelligence (AI)-driven algorithms are enhancing everything from diagnostic imaging to drug delivery systems.
This blending of technologies is especially noticeable in combination products like modern insulin pumps. Modern insulin pumps represent a sophisticated integration of drug delivery hardware, precision sensors, and intelligent software working in concert to manage patient care. The success of such devices depends not just on individual components but on their seamless integration and collective intelligence.
Artificial intelligence is transforming quality control in medical device and IVD manufacturing through in-process verification and inspection. AI-powered systems can analyze product characteristics in real-time, from package integrity to component specifications, enabling early detection of quality issues and reducing costly downstream corrections.
The true potential of AI in medical devices and in-vitro diagnostics goes well beyond manufacturing. PMS activities now leverage AI to monitor product performance across vast datasets, including social media, scientific literature, clinical registries, and even audio files. This comprehensive monitoring helps identify usage patterns, quality issues, and safety signals that might not be apparent during initial clinical trials.
The challenge lies in detecting not just obvious trends but also critical, yet statistically rare events. While traditional threshold and signal monitoring easily catches large-scale issues, sophisticated AI algorithms are needed to identify singular but significant events that could indicate systematic failures. This capability is crucial to maintain global patient safety and drive continuous product improvement.
The unique nature of medical device and IVD clinical trials necessitates approaches different from those of traditional pharmaceutical studies. Unlike drug trials, where placebo controls are standard, medical device trials must find alternative ways to demonstrate safety and efficacy. After all, as one industry expert asks, “Who wants a placebo pacemaker?”
This is where synthetic data and AI sandboxes are proving invaluable. These tools allow developers to test device performance across a broader range of scenarios and patient demographics than would be practical in traditional clinical trials. For example, AI models can analyze how cardiac devices might perform across diverse patient populations by running simulations using synthetic physiological data.
PMS has evolved from a regulatory requirement into a crucial source of product innovation. Integrating post-market data into the development cycle offers essential insights into real-world usage patterns, potential failures, and unanticipated applications that controlled trials may not reveal.
This continuous feedback loop is crucial to identify and address product misuse, which is a key contributor to adverse events. When misuse patterns emerge, manufacturers must determine whether they represent isolated incidents or indicate a need for design modifications, updated instructions, or additional training materials. This decision-making process exemplifies the importance of connected intelligence in modern medical device development.
The future of medical device and IVD development involves the advanced integration of hardware, software, and therapeutic components, all interconnected through intelligent systems that can learn and adapt. Synthetic data and AI sandboxes will play an expanding role in device testing and validation, while advanced analytics will continue to enhance our ability to detect and respond to safety signals.
The true value of connected intelligence in medical devices and in-vitro diagnostics is not just in the technology but in its ability to create a more responsive, adaptive healthcare ecosystem. By closing the loop between post-market experience and initial design, manufacturers can develop safer, more effective devices while reducing development times and costs.
As these systems mature, we can expect to see even greater convergence between different healthcare technologies, with AI and connected intelligence serving as the bridge between them. The end goal remains constant: Better patient outcomes through smarter, more integrated medical solutions. The revolution in connected devices is just beginning and its impact on healthcare delivery and patient care will be profound.
As senior director of product and strategy at IQVIA, Mike King is responsible for ensuring healthcare solutions have the necessary functionality to support increasingly complex and diverse global regulations. With 20 years of commercial experience, his focus is on optimizing business workflows through intelligence-driven simplification and automation across quality, regulatory, and safety functions. Passionate about improving patient outcomes, and an expert on AI use cases within the quality and regulatory space, King applies his vast knowledge and skill base to help develop innovative solutions to drive the quality agenda in healthcare.
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