Special Section: Technology and the body Linking Life and Technology Wired Patients: Implantable microch and biosensors in patient care KEITH A. BAUER After decades of specialization within the sciences, the development and application of implantable microchips and biosensors are now being made possible by a growing convergence among seemingly disparate scientific dis ciplines including, among others, biology, informatics, chemistry, and engineer ing. This convergence of diverse scientific disciplines is the basis for the creation of new technologies that will have significant medical potential. As of today, implantable microchips and biosensors are being used as mental pros- theses to compensate for a loss of normal function, to remotely monitor patients' vital signs, to control the delivery of medications, and to communicate with geographically distant healthcare professionals and the outside environment. But, to fully appreciate the significance of implantable microchips and bio- sensors,it is important to understand that their development and use are situated within larger demographic, economic, and technologic developments, which are also converging to intensify creation of new automated and self-care technologies. These demographic, economic, and technologic developments are the growth of an aging population, society's need to control skyrocketing healthcare costs, and the formation of a comprehensive, global telecommuni- cations network When understood in light of this broader context, what are some of the most ikely and desirable healthcare consequences of implantable microchips and biosensors? First, microchips and biosensors are likely to support independent living and facilitate continuum of care. In doing so, these devices are likely to help move healthcare delivery from institutional settings to noninstitutional settings such as the home, giving patients more autonomy and a greater role in managing their own healthcare. Second, increased use of microchips and biosensors is likely to make healthcare more proactive and preventative rather than reactive and episodic. What the above likely outcomes have in common is that, as information and communication technologies are integrated into the human body the human body itself is more fully integrated into a vast, external information and telecommunications environment that includes for example, the Internet, elec tronic databases, and global positioning satellites. Therefore, we should not lose sight of the fact that, as we transform the human body internally with microchips and biosensors, we also transform externally how individuals interact and live in the world. As I hope to show in the remainder of this paper, able microchips and biosensors for patients and healthcare professionals. 2 A this transformation is the most immediate and likely consequence of impl 10.1017/50963180107070314
Special Section: Technology and the Body: Linking Life and Technology Wired Patients: Implantable Microchips and Biosensors in Patient Care KEITH A. BAUER After decades of specialization within the sciences, the development and application of implantable microchips and biosensors are now being made possible by a growing convergence among seemingly disparate scientific disciplines including, among others, biology, informatics, chemistry, and engineering.1 This convergence of diverse scientific disciplines is the basis for the creation of new technologies that will have significant medical potential. As of today, implantable microchips and biosensors are being used as mental prostheses to compensate for a loss of normal function, to remotely monitor patients’ vital signs, to control the delivery of medications, and to communicate with geographically distant healthcare professionals and the outside environment. But, to fully appreciate the significance of implantable microchips and biosensors, it is important to understand that their development and use are situated within larger demographic, economic, and technologic developments, which are also converging to intensify creation of new automated and self-care technologies. These demographic, economic, and technologic developments are the growth of an aging population, society’s need to control skyrocketing healthcare costs, and the formation of a comprehensive, global telecommunications network. When understood in light of this broader context, what are some of the most likely and desirable healthcare consequences of implantable microchips and biosensors? First, microchips and biosensors are likely to support independent living and facilitate continuum of care. In doing so, these devices are likely to help move healthcare delivery from institutional settings to noninstitutional settings such as the home, giving patients more autonomy and a greater role in managing their own healthcare. Second, increased use of microchips and biosensors is likely to make healthcare more proactive and preventative rather than reactive and episodic. What the above likely outcomes have in common is that, as information and communication technologies are integrated into the human body, the human body itself is more fully integrated into a vast, external information and telecommunications environment that includes, for example, the Internet, electronic databases, and global positioning satellites. Therefore, we should not lose sight of the fact that, as we transform the human body internally with microchips and biosensors, we also transform externally how individuals interact and live in the world. As I hope to show in the remainder of this paper, this transformation is the most immediate and likely consequence of implantable microchips and biosensors for patients and healthcare professionals.2 Cambridge Quarterly of Healthcare Ethics (2007), 16, 281–290. Printed in the USA. Copyright © 2007 Cambridge University Press 0963-1801/07 $20.00 DOI: 10.1017/S0963180107070314 281
Keith a. bauer However, before looking in depth at the issues discussed above, helpful to look first at some of the ways in which implantable or su icrochips and biosensors are currently being used and how much utility depends on being linked with a larger external information sh of the munication network Current Trends in Implantable Microchips and Biosensors There are a growing number of very specific medical applications for implant ble microchips and biosensors but there are at least three broad functions erformed by these medical devices: (1) prosthetic,(2)monitoring, and(3) enhancement.In what follows, I identify and discuss specific applications of implantable microchips and biosensors that are illustrative, but not exhaustive, f the aforementioned function Prosthetic Applications Although still exotic, neurotrophic brain implants, electrodes that are surgically inserted into the motor cortex of the brain, were first implanted in a human in 998 and used as mental prostheses to compensate for a loss of normal function in persons unable to speak, for example, because of stroke, spinal cord injuries, or amyotrophic lateral sclerosis. Neurotrophic brain implants are now becom- ng more commonplace. As recently as 2004, the Food and Drug Administration gave approval to begin systematic clinical trails to implant microchips in the brains of paralyzed patients How does a neurotrophic brain implant work? Once the electrode is im- planted into the motor cortex of the patient's brain, neurons in the brain transmit electrical signals to the electrode that, in turn, transmits the same signals to a receiver placed on the patient's scalp. These recorded signals are connected to a computer and are used as a substitute cursor or mouse. As patients learn to control the strength and pattern of electrical impulses being produced in the brain, they are able to direct the cursor to a specific point the computer as they wish. In doing so, patients are able to communicate and can even send e-mail n Implanting an electrode/biosensor in a person s brain is an amazing medical d scientific accomplishment. It must, however, be pointed out that the success of patient communication in this particular example depends on the existence of an external and established telecommunications infrastructure That is, without phone lines, computers, the Internet, e-mail, and simple lectrical power, a neurotrophic brain implant would be useless and not worth implanting in the first place Monitoring applications In addition to prosthetic applications that compensate for the loss of normal function, subdermal microchips and biosensors are also being used to monitor human organs. For example, Medtronic Inc, the first company to develop and market implantable heart monitors in 1997, now has implants so small that they can be inserted inside the heart itself to detect atrial fibrillation and to
However, before looking in depth at the issues discussed above, it will be helpful to look first at some of the ways in which implantable or subdermal microchips and biosensors are currently being used and how much of their utility depends on being linked with a larger external information and communication network. Current Trends in Implantable Microchips and Biosensors There are a growing number of very specific medical applications for implantable microchips and biosensors, but there are at least three broad functions performed by these medical devices: (1) prosthetic, (2) monitoring, and (3) enhancement.3 In what follows, I identify and discuss specific applications of implantable microchips and biosensors that are illustrative, but not exhaustive, of the aforementioned functions. Prosthetic Applications Although still exotic, neurotrophic brain implants, electrodes that are surgically inserted into the motor cortex of the brain, were first implanted in a human in 1998 and used as mental prostheses to compensate for a loss of normal function in persons unable to speak, for example, because of stroke, spinal cord injuries, or amyotrophic lateral sclerosis.4 Neurotrophic brain implants are now becoming more commonplace. As recently as 2004, the Food and Drug Administration gave approval to begin systematic clinical trails to implant microchips in the brains of paralyzed patients.5 How does a neurotrophic brain implant work? Once the electrode is implanted into the motor cortex of the patient’s brain, neurons in the brain transmit electrical signals to the electrode that, in turn, transmits the same signals to a receiver placed on the patient’s scalp. These recorded signals are connected to a computer and are used as a substitute cursor or mouse. As patients learn to control the strength and pattern of electrical impulses being produced in the brain, they are able to direct the cursor to a specific point on the computer as they wish. In doing so, patients are able to communicate and can even send e-mail. Implanting an electrode/biosensor in a person’s brain is an amazing medical and scientific accomplishment. It must, however, be pointed out that the success of patient communication in this particular example depends on the existence of an external and established telecommunications infrastructure. That is, without phone lines, computers, the Internet, e-mail, and simple electrical power, a neurotrophic brain implant would be useless and not worth implanting in the first place. Monitoring Applications In addition to prosthetic applications that compensate for the loss of normal function, subdermal microchips and biosensors are also being used to monitor human organs. For example, Medtronic Inc., the first company to develop and market implantable heart monitors in 1997, now has implants so small that they can be inserted inside the heart itself to detect atrial fibrillation and to Keith A. Bauer 282
Wired patients monitor blood pressure and heart rate. For cardiac patients, these miniaturized mplants are a significant improvement over the bulky external electrocard gram monitors they previously wore. Another important feature of an implantable, cardiac biosensor is its capacity to be linked to a sophisticated Internet-based monitoring network that allows patients to transmit device and physiologic data to their clinicians without having to leave their homes. Patients do this by holding a small, computer- shaped mouse antenna over their implants, which then sends the collected data to clinicians over standard phone lines. Clinicians can remotely monitor the condition of patients by logging into a secure clinician Web site. In some locations, clinicians can access patient data by means of a handheld computer or personal digital assistant(PDA). Patients also have access to a secure patient Web site where they can obtain health-related information and person alized device data What are some of the benefits that stem from the use of Internet-based cardiac biosensors? First, as mentioned above, patients can provide physiologic and device data to their clinicians from the convenience of their homes that previously required an office visit. Second, because these devices can provide p-to-the-minute monitoring, patients may gain greater peace of mind, which could reduce, if not eliminate, unwarranted emergency room and office visits Finally, because clinicians can obtain real-time physiologic data about their patients, clinicians can be more proactive and less reactive in the care of their patients. Consequently, patients can receive better informed treatments, which in turn, are likely to result in better health outcomes for patients and reduced healthcare expenditures As with the prosthetic application discussed above, the realization of the full benefit of a cardiac biosensor depends on the existence of a sophisticated information and telecommunications infrastructure that can itself record, store and transmit the physiologic data monitored by the implanted biosensor Enhancement Applications The third application of implantable microchips and biosensors deals with the enhancement of human function, for example, the extension of our senses beyond the immediate environment, improvement in memory and physical strength, or the general augmentation of our abilities to perform various tasks Like prosthetic and monitoring applications, many of the current enhancement applications of implantable microchips and biosensors depend on the larger telecommunications infrastructure For many, enhancement of human function brings to mind sci-fi images of borgs with superior physical and mental powers. But we don' t have to imagine some possible future to see how human function can be enhanced with microchips and biosensors. In fact, less"sexy" human enhancements for aug- menting our normal functions are already in use. For example, implantable microchips, in conjunction with global positioning satellites(GPS), are cur- rently being used to track pets. As a telescope extends our ability to see long microchips in pets enhances normal human functioning and abilities. There is 83
monitor blood pressure and heart rate.6 For cardiac patients, these miniaturized implants are a significant improvement over the bulky, external electrocardiogram monitors they previously wore. Another important feature of an implantable, cardiac biosensor is its capacity to be linked to a sophisticated Internet-based monitoring network that allows patients to transmit device and physiologic data to their clinicians without having to leave their homes. Patients do this by holding a small, computershaped mouse antenna over their implants, which then sends the collected data to clinicians over standard phone lines. Clinicians can remotely monitor the condition of patients by logging into a secure clinician Web site. In some locations, clinicians can access patient data by means of a handheld computer or personal digital assistant (PDA).7 Patients also have access to a secure patient Web site where they can obtain health-related information and personalized device data. What are some of the benefits that stem from the use of Internet-based cardiac biosensors? First, as mentioned above, patients can provide physiologic and device data to their clinicians from the convenience of their homes that previously required an office visit. Second, because these devices can provide up-to-the-minute monitoring, patients may gain greater peace of mind, which could reduce, if not eliminate, unwarranted emergency room and office visits. Finally, because clinicians can obtain real-time physiologic data about their patients, clinicians can be more proactive and less reactive in the care of their patients. Consequently, patients can receive better informed treatments, which, in turn, are likely to result in better health outcomes for patients and reduced healthcare expenditures.8 As with the prosthetic application discussed above, the realization of the full benefit of a cardiac biosensor depends on the existence of a sophisticated information and telecommunications infrastructure that can itself record, store, and transmit the physiologic data monitored by the implanted biosensor. Enhancement Applications The third application of implantable microchips and biosensors deals with the enhancement of human function, for example, the extension of our senses beyond the immediate environment, improvement in memory and physical strength, or the general augmentation of our abilities to perform various tasks. Like prosthetic and monitoring applications, many of the current enhancement applications of implantable microchips and biosensors depend on the larger telecommunications infrastructure. For many, enhancement of human function brings to mind sci-fi images of cyborgs with superior physical and mental powers. But we don’t have to imagine some possible future to see how human function can be enhanced with microchips and biosensors. In fact, less “sexy” human enhancements for augmenting our normal functions are already in use. For example, implantable microchips, in conjunction with global positioning satellites (GPS), are currently being used to track pets. As a telescope extends our ability to see long distances, this particular application of an implantable microchip increases our ability to “see” where our pets are. In doing so, the use of implantable microchips in pets enhances normal human functioning and abilities. There is, Wired Patients 283
Keith a. bauer of course, a monitoring aspect, but the primary aim of implanting a microchip in a pet is not to monitor and then transmit its physiologic data; rather, it is enhance our ability to find a lost pet. Although in the very early stages of development, programs to enhance human function by implanting microchips in humans have begun to emerge First, as with pets and GPS navigation systems found in many automobiles, ome groups are advocating that microchips be implanted in children and the elderly as a way to make it easier to track and to locate lost or abducted children. Second, companies, such as Applied Digital Solutions, have devel- oped an implantable microchip, called the Verichip, that holds personal data, such as medical information, and can be used to identify persons, making sure that only those who have legitimate access to computers and secure sites can gain access. o Third, in the not too distant future, a total integration of the human body and various information and communication technologies may be possible, for example, wireless, subdermal phone and e-mail transmitters that are linked directly to the human br Whether it be a prosthetic, monitoring, or enhancement application, what nakes microchip sensors useful is not simply their implantation into the human body; rather, it is that their implantation into the human body further integrates the human body into an external information and telecom- munications environment. In doing so, we alter our sense of self, gain greater control over our environments, and transform how we interact with each other. With that said, I don' t mean to suggest that other medical technologies such as pacemakers, which are routinely implanted into the human body, do not have an effect on one's sense of self. In fact, I would argue that any integration into the natural human body of what is artificial would have consequences for how persons think of themselves and live in the world (e.g, wearing a pair of glasses). The point is that the real power of implantable microchips to alter one's sense of self and relations to the world depends on connections with various external information and telecommunication technologies. As I discuss subsequently, these changes brought about by implantable microchips and biosensors will have significant implications for patient care Likely and Desirable Future Trend At the beginning of this paper, I identified two likely and desirable future trends in healthcare associated with implantable microchips and biosensors These trends are (1) improvement in the continuum of care and greater movement of healthcare delivery from institutional settings to noninstitutional settings and (2)a more proactive and less reactive healthcare system Improving Independent Living and Continuum of Care First, how will implantable microchips and biosensors likely improve the continuum of patient care? The general answer is that these technologies will better enable the integration of the patient's body with its immediate environ- ment and the larger community, in particular, the healthcare community Because implantable microchips and biosensors, like many other kinds of nformation and communication technologies, are interactive, they can help
of course, a monitoring aspect, but the primary aim of implanting a microchip in a pet is not to monitor and then transmit its physiologic data; rather, it is to enhance our ability to find a lost pet. Although in the very early stages of development, programs to enhance human function by implanting microchips in humans have begun to emerge. First, as with pets and GPS navigation systems found in many automobiles, some groups are advocating that microchips be implanted in children and the elderly as a way to make it easier to track and to locate lost or abducted children.9 Second, companies, such as Applied Digital Solutions, have developed an implantable microchip, called the Verichip, that holds personal data, such as medical information, and can be used to identify persons, making sure that only those who have legitimate access to computers and secure sites can gain access.10 Third, in the not too distant future, a total integration of the human body and various information and communication technologies may be possible, for example, wireless, subdermal phone and e-mail transmitters that are linked directly to the human brain. Whether it be a prosthetic, monitoring, or enhancement application, what makes microchips and biosensors useful is not simply their implantation into the human body; rather, it is that their implantation into the human body further integrates the human body into an external information and telecommunications environment. In doing so, we alter our sense of self, gain greater control over our environments, and transform how we interact with each other. With that said, I don’t mean to suggest that other medical technologies such as pacemakers, which are routinely implanted into the human body, do not have an effect on one’s sense of self. In fact, I would argue that any integration into the natural human body of what is artificial would have consequences for how persons think of themselves and live in the world (e.g., wearing a pair of glasses). The point is that the real power of implantable microchips to alter one’s sense of self and relations to the world depends on connections with various external information and telecommunication technologies. As I discuss subsequently, these changes brought about by implantable microchips and biosensors will have significant implications for patient care. Likely and Desirable Future Trends At the beginning of this paper, I identified two likely and desirable future trends in healthcare associated with implantable microchips and biosensors. These trends are (1) improvement in the continuum of care and greater movement of healthcare delivery from institutional settings to noninstitutional settings and (2) a more proactive and less reactive healthcare system. Improving Independent Living and Continuum of Care First, how will implantable microchips and biosensors likely improve the continuum of patient care? The general answer is that these technologies will better enable the integration of the patient’s body with its immediate environment and the larger community, in particular, the healthcare community. Because implantable microchips and biosensors, like many other kinds of information and communication technologies, are interactive, they can help Keith A. Bauer 284
Wired patients facilitate damaged or less than optimal person-environment interactions that are due to illness or environmental barriers(e.g, lack of transportation). The traditional view in medicine, however, has been to view the purpose of technology as a way to fix persons, not environments. The problem with this view is that it construes persons as being distinct from their environments and overlooks the essential issue of person-environment interaction. As communi- cation technologies and medical implants become more commonplace in the provision of medical services, this traditional view will and should continue to As implantable microchips and biosensors more fully integrate patient bod ies with their environments, continuum of care will be facilitated, and patient are will increasingly migrate from institutional to noninstitutional settings such as the home. In addition, implantable microchips and biosensors will be linked to more powerful and sophisticated sensors that allow for the construc- tion of"smart homes"and the creation of almost seamless person -environment interactions. Home-based sensors in concert with implantable microchips and biosensors will exhibit a collective, synergistic intelligence that not only mon- itors, stores, and transmits biometric data to healthcare professionals, but also allows, for example, elderly or disabled patients to more easily regulate their home environments by controlling lights, temperature, and appliances. By giving patients more control over their environments, implantable microchips and biosensors have the capacity to enhance the autonomy and well-being of patients. 12 Creating a Proactive System of Healthcare and does a poor job of detecting medical conditions and responding to medical emergencies. Consequently, the present model of healthcare delivery in emer- gency medicine is less likely to maximize both the quality of patient care and patient health outcomes. I In conjunction with external information and communication technologies, how might implantable microchips and biosensors help us transition from a reactive to a preventative healthcare system? In answering this question, take for example, the implantable cardiac biosensors discussed earlier that allow for the continuous real-time monitoring and transmission of a patient's cardiac functions. These subdermal biosensors can be coupled with desktop telehealth units and the Internet and include intelligent software/hardware modules that can detect an emergency event that, in turn, can automatically alert an emer- gency call center Unlike a reactive and approach that responds after an emergency cardiac event is in prog automated system is preventative. That is, implantable cardiac biose when linked with external information and communications technology can detect a cardiac event at its earliest stages and before the patient himself knows what is happening. In doing so, not only are opportunities to prevent serious patient harm or death increased, the costs of treating and managing cardiac patients is likely to decrease. In concrete terms, proactive healthcare system that can prevent emergencies is a healthcare
facilitate damaged or less than optimal person–environment interactions that are due to illness or environmental barriers (e.g., lack of transportation). The traditional view in medicine, however, has been to view the purpose of technology as a way to fix persons, not environments. The problem with this view is that it construes persons as being distinct from their environments and overlooks the essential issue of person–environment interaction. As communication technologies and medical implants become more commonplace in the provision of medical services, this traditional view will and should continue to dissipate. As implantable microchips and biosensors more fully integrate patient bodies with their environments, continuum of care will be facilitated, and patient care will increasingly migrate from institutional to noninstitutional settings such as the home. In addition, implantable microchips and biosensors will be linked to more powerful and sophisticated sensors that allow for the construction of “smart homes” and the creation of almost seamless person–environment interactions. Home-based sensors in concert with implantable microchips and biosensors will exhibit a collective, synergistic intelligence that not only monitors, stores, and transmits biometric data to healthcare professionals, but also allows, for example, elderly or disabled patients to more easily regulate their home environments by controlling lights, temperature, and appliances.11 By giving patients more control over their environments, implantable microchips and biosensors have the capacity to enhance the autonomy and well-being of patients.12 Creating a Proactive System of Healthcare The model of healthcare delivery utilized today in emergency medicine is reactive and episodic, not proactive and preventative. As such, it is expensive and does a poor job of detecting medical conditions and responding to medical emergencies. Consequently, the present model of healthcare delivery in emergency medicine is less likely to maximize both the quality of patient care and patient health outcomes.13 In conjunction with external information and communication technologies, how might implantable microchips and biosensors help us transition from a reactive to a preventative healthcare system? In answering this question, take, for example, the implantable cardiac biosensors discussed earlier that allow for the continuous real-time monitoring and transmission of a patient’s cardiac functions. These subdermal biosensors can be coupled with desktop telehealth units and the Internet and include intelligent software/hardware modules that can detect an emergency event that, in turn, can automatically alert an emergency call center. Unlike a reactive and episodic approach that responds after an emergency cardiac event is in progress, an automated system is preventative. That is, implantable cardiac biosensors when linked with external information and communications technology can detect a cardiac event at its earliest stages and before the patient himself knows what is happening. In doing so, not only are opportunities to prevent serious patient harm or death increased, the costs of treating and managing cardiac patients is likely to decrease. In concrete terms, a proactive healthcare system that can prevent emergencies is a healthcare Wired Patients 285