UH's C. T. Bauer College of Business will house the newly launched Healthcare Business Institute. Photo via Getty Images

The University of Houston announced this month that it has now launched its new Healthcare Business Institute, which will work with medical and business leaders as well as students to find solutions to pressing issues in the health care industry, such as high costs, access to care and new innovative technologies.

The institute will be part of the university's C. T. Bauer College of Business and led by Ravi Aron, research director and professor of health care strategy and technology in the Bauer College Department of Decision & Information Sciences, and Dr. Edward Kroger, the administrative director of the center.

“Providers are facing increasingly limited reimbursement from the U.S. government, insurers and employers. The industry is, therefore, struggling with finding new ways to increase value by improving quality and decreasing cost,” Aron says in a statement. “This is complicated by the fact that the industry is the most heavily regulated in the country. While policy, regulations and the government all have roles to play, efficient care delivery also requires businesses–small, medium, large and startups-to play a significant role in delivering effective and efficient care.”

The institute plans to bring together stakeholders from device makers and pharmaceutical companies to angel investors and educators to address many of these issues. Faculty and partners will release impactful research on topics such as hospital operations, new health care technologies, AI and machine learning in hospital contexts, emerging financial models in health care and a number of other topics.

Research will be shared in a new practitioner-facing Knowledge Portal that will feature a journal, editorials, and other media components like blogs, videos and audio.

The HBI will also have an educational component, with formal degree-based and shorter non-degree tracts, as well as a masters program related to health care leadership. Multiple executive education programs are also in the works.

“This unique combination of researchers, educationists and students will also benefit by connecting to perhaps the world’s most diversified health care ecosystem,” Aron says in the statement.

And Houston is the right place to house such an institute, says Bauer College Dean and Cullen Distinguished Chair Professor Paul A. Pavlou.

“Technology, data, and AI are enabling unprecedented advances in medicine, and Houston’s impressive health care network presents an exciting opportunity for a Healthcare Business Institute,” Pavlou says in the release. “Not only is Houston home to the Texas Medical Center, UH is the only university in Houston that includes a large number of health care researchers at the Bauer College of Business, a world-ranked health law program at the UH Law Center, a computer science department with many distinguished research faculty, and a new College of Medicine."

“The opportunity for meaningful collaboration among health care researchers, industry leaders, and students through HBI will be a tremendous asset for Houston with the potential for local, national and global impact,” he continues.

Earlier this summer, UH announced plans to open a 70,000-square-foot innovation hub next to the M.D. Anderson Library on UH's main campus in 2025. It's slated to house a makerspace, the Cyvia and Melvyn Wolff Center for Entrepreneurship, the Energy Transition Institute, innovation programs, and Presidential Frontier Faculty labs and offices.
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CenterPoint and partners launch AI initiative to stabilize the power grid

AI infrastructure

Houston-based utility company CenterPoint Energy is one of the founding partners of a new AI infrastructure initiative called Chain Reaction.

Software companies NVIDIA and Palantir have joined CenterPoint in forming Chain Reaction, which is aimed at speeding up AI buildouts for energy producers and distributors, data centers and infrastructure builders. Among the initiative’s goals are to stabilize and expand the power grid to meet growing demand from data centers, and to design and develop large data centers that can support AI activity.

“The energy infrastructure buildout is the industrial challenge of our generation,” Tristan Gruska, Palantir’s head of energy and infrastructure, says in a news release. “But the software that the sector relies on was not built for this moment. We have spent years quietly deploying systems that keep power plants running and grids reliable. Chain Reaction is the result of building from the ground up for the demands of AI.”

CenterPoint serves about 7 million customers in Texas, Indiana, Minnesota and Ohio. After Hurricane Beryl struck Houston in July 2024, CenterPoint committed to building a resilient power grid for the region and chose Palantir as its “software backbone.”

“Never before have technology and energy been so intertwined in determining the future course of American innovation, commercial growth, and economic security,” Jason Wells, chairman, president and CEO of CenterPoint, added in the release.

In November, the utility company got the go-ahead from the Public Utility Commission of Texas for a $2.9 billion upgrade of its Houston-area power grid. CenterPoint serves 2.9 million customers in a 12-county territory anchored by Houston.

A month earlier, CenterPoint launched a $65 billion, 10-year capital improvement plan to support rising demand for power across all of its service territories.

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This article originally appeared on our sister site, EnergyCapitalHTX.com.

UH receives $2.6M gift to support opioid addiction research and treatment

drug research

The estate of Dr. William A. Gibson has granted the University of Houston a $2.6 million gift to support and expand its opioid addiction research, including the development of a fentanyl vaccine that could block the drug's ability to enter the brain.

The gift builds upon a previous donation from the Gibson estate that honored the scientist’s late son Michael, who died from drug addiction in 2019. The original donation established the Michael C. Gibson Addiction Research Program in UH's department of psychology. The latest donation will establish the Michael Conner Gibson Endowed Professorship in Psychology and the Michael Conner Gibson Research Endowment in the College of Liberal Arts and Social Sciences.

“This incredibly generous gift will accelerate UH’s addiction research program and advance new approaches to treatment,” Daniel O’Connor, dean of the College of Liberal Arts and Social Sciences, said in a news release.

The Michael C. Gibson Addiction Research Program is led by UH professor of psychology Therese Kosten and Colin Haile, a founding member of the UH Drug Discovery Institute. Currently, the program produces high-profile drug research, including the fentanyl vaccine.

According to UH, the vaccine can eliminate the drug’s “high” and could have major implications for the nation’s opioid epidemic, as research reveals Opioid Use Disorder (OUD) is treatable.

The endowed professorship is combined with a one-to-one match from the Aspire Fund Challenge, a $50 million grant program established in 2019 by an anonymous donor. UH says the program has helped the university increase its number of endowed chairs and professorships, including this new position in the department of psychology.

“Our future discoveries will forever honor the memory of Michael Conner Gibson and the Gibson family,” O’Connor added in the release. “And I expect that the work supported by these endowments will eventually save many thousands of lives.”

Houston researchers develop material to boost AI speed and cut energy use

ai research

A team of researchers at the University of Houston has developed an innovative thin-film material that they believe will make AI devices faster and more energy efficient.

AI data centers consume massive amounts of electricity and use large cooling systems to operate, adding a strain on overall energy consumption.

“AI has made our energy needs explode,” Alamgir Karim, Dow Chair and Welch Foundation Professor at the William A. Brookshire Department of Chemical and Biomolecular Engineering at UH, explained in a news release. “Many AI data centers employ vast cooling systems that consume large amounts of electricity to keep the thousands of servers with integrated circuit chips running optimally at low temperatures to maintain high data processing speed, have shorter response time and extend chip lifetime.”

In a report recently published in ACS Nano, Karim and a team of researchers introduced a specialized two-dimensional thin film dielectric, or electric insulator. The film, which does not store electricity, could be used to replace traditional, heat-generating components in integrated circuit chips, which are essential hardware powering AI.

The thinner film material aims to reduce the significant energy cost and heat produced by the high-performance computing necessary for AI.

Karim and his former doctoral student, Maninderjeet Singh, used Nobel prize-winning organic framework materials to develop the film. Singh, now a postdoctoral researcher at Columbia University, developed the materials during his doctoral training at UH, along with Devin Shaffer, a UH professor of civil engineering, and doctoral student Erin Schroeder.

Their study shows that dielectrics with high permittivity (high-k) store more electrical energy and dissipate more energy as heat than those with low-k materials. Karim focused on low-k materials made from light elements, like carbon, that would allow chips to run cooler and faster.

The team then created new materials with carbon and other light elements, forming covalently bonded sheetlike films with highly porous crystalline structures using a process known as synthetic interfacial polymerization. Then they studied their electronic properties and applications in devices.

According to the report, the film was suitable for high-voltage, high-power devices while maintaining thermal stability at elevated operating temperatures.

“These next-generation materials are expected to boost the performance of AI and conventional electronics devices significantly,” Singh added in the release.