The Cancer Prevention and Research Institute of Texas recently announced fresh funding for cancer researchers, and Houston organizations received more than 40 percent of it. Photo via Getty Images

The Cancer Prevention and Research Institute of Texas (CPRIT) has awarded around $40 million in grants to cancer researchers and cancer research institutions in the Houston area.

The Houston-area grants represent more than 40 percent of the statewide grants recently approved by Austin-based CPRIT.

The largest local grant, $6 million, went to Hongfang Liu and the University of Texas Health Science Center at Houston. The grant helped attract Liu to UTHealth Houston. She is a pioneer in biomedical informatics, an emerging field in cancer research.

Liu comes to Houston from the Mayo Clinic. At UTHealth Houston, she will be director of the Center for Translational Artificial Intelligence in Medicine within the School of Biomedical Informatics as well as vice president for learning health systems.

In a news release, Dr. Giuseppe Colasurdo, president of UTHealth Houston, says the recruitment of Lui “will strategically enhance the position of Texas as a national and international leader in data science, artificial intelligence, and informatics applications in the diagnosis, prevention, and treatment of cancer.”

Other CPRIT grant recipients at UTHealth Houston were:

  • Lara Savas — $2,499,492 for early detection and treatment of breast and cervical cancer among Latinas
  • Chao Hsing Yeh — $1,046,680 for an acupressure program to help patients manage cancer-related pain
  • Belinda Reininger — $999,254 for a lifestyle intervention program in South Texas
  • Paula Cuccaro — $449,959 for a targeted approach to boosting HPV vaccinations

What follows is a rundown of other CPRIT grant recipients in the Houston area.

University of Texas MD Anderson Cancer Center

  • Kenneth Hu — $2 million to recruit him as a first-time, tenure-track faculty member
  • Dr. Kelly Nelson — $1,998,196 to support a program for early detection of melanoma
  • Robert Volk — $1,988,211 for a lung cancer screening program
  • Jian Hu — $1.4 million for research into brain and spinal cord tumors in children
  • Die Zhang — $1,399,730 for research into cognitive issues caused by radiation treatment
  • Peng Wei — $1,199,994 for research into the evolution of bladder cancer
  • Boyi Gan — $1,050,000 for the study of cell death in breast cancer patients
  • Sue-Hwa Lin — $1,050,000 for a novel immunotherapy to treat the spread of prostate cancer to the bones
  • Joseph McCarty — $1,050,000 for research into invasive cells in patients with brain or spinal cord tumors
  • Cullen Taniguchi — $1,049,997 for the study of immune responses related to pancreatic cancer
  • Dr. Andrea Viale — $1,049,985 for the study of immune responses related to pancreatic cancer
  • Michael Curran —$1,049,905 for research into blocking DNA damage related to radiation therapy and immunotherapy
  • Wantong Yao — $1,049,854 for research into a novel therapy for pancreatic cancer
  • Eleonora Dondossola — $1,025,623 for the study of therapy resistance among certain patients with prostate or kidney cancer
  • Niki Zacharias Millward — $1,019,997 for the study of a type of kidney cancer that begins in the lining of small tubes inside the organ

Baylor College of Medicine

  • Xi Chen — $2 million for the study of immunotherapy resistance among some breast cancer patients
  • Melanie Bernhardt — $1,392,407 for research aimed at improving treatment of acute lymphoblastic leukemia in children
  • Pavel Sumazin — $1,371,733 for research into hepatocellular carcinoma, the most common type of liver cancer
  • Maksim Mamonkin — $1,050,000 for improving treatment of T-cell acute lymphoblastic leukemia and lymphoblastic lymphoma

University of Texas Medical Branch at Galveston

  • Ana Rodriguez — $2,257,898 for an HPV vaccination program in the Rio Grande Valley

Houston Methodist Research Institute

  • Ewan McRae — $1,999,977 to recruit him to Houston from the United Kingdom’s Cambridge University as an expert in RNA therapeutics

University of Houston

  • Lorraine Reitzel — $448,726 for lung cancer screening programs
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Houston-based HPE wins $931M contract to upgrade military data centers

defense data centers

Hewlett Packard Enterprise (HPE), based in Spring, Texas, which provides AI, cloud, and networking products and services, has received a $931 million contract to modernize data centers run by the federal Defense Information Systems Agency.

HPE says it will supply distributed hybrid multicloud technology to the federal agency, which provides combat support for U.S. troops. The project will feature HPE’s Private Cloud Enterprise and GreenLake offerings. It will allow DISA to scale and accelerate communications, improve AI and data analytics, boost IT efficiencies, reduce costs and more, according to a news release from HPE.

The contract comes after the completion of HPE’s test of distributed hybrid multicloud technology at Defense Information Systems Agency (DISA) data centers in Mechanicsburg, Pennsylvania, and Ogden, Utah. This technology is aimed at managing DISA’s IT infrastructure and resources across public and private clouds through one hybrid multicloud platform, according to Data Center Dynamics.

Fidelma Russo, executive vice president and general manager of hybrid cloud at HPE, said in a news release that the project will enable DISA to “deliver innovative, future-ready managed services to the agencies it supports that are operating across the globe.”

The platform being developed for DISA “is designed to mirror the look and feel of a public cloud, replicating many of the key features” offered by cloud computing businesses such as Amazon Web Services (AWS), Microsoft Azure and Google Cloud Platform, according to The Register.

In the 1990s, DISA consolidated 194 data centers into 16. According to The Register, these are the U.S. military’s most sensitive data centers.

More recently, in 2024, the Fort Meade, Maryland-based agency laid out a five-year strategy to “simplify the network globally with large-scale adoption of command IT environments,” according to Data Center Dynamics.

Astros and Rockets launch new streaming service for Houston sports fans

Sports Talk

Houston sports fans now have a way to watch their favorite teams without a cable or satellite subscription. Launched December 3, the Space City Home Network’s SCHN+ service allows consumers to watch the Houston Astros and Houston Rockets via iOS, Apple TV, Android, Amazon Fire TV, or web browser.

A subscription to SCHN+ allows sports fans to watch all Astros and Rockets games, as well as behind-the-scenes features and other on-demand content. It’s priced at $19.99 per month or $199.99 annually (plus tax). People who watch Space City Network Network via their existing cable or satellite service will be able to access SCHN+ at no additional charge.

As the Houston Chronicle notes, the Astros and Rockets were the only MLB and NBA teams not to offer a direct-to-consumer streaming option.

“We’re thrilled to offer another great option to ensure fans have access to watch games, and the SCHN+ streaming app makes it easier than ever to cheer on the Rockets,” Rockets alternate governor Patrick Fertitta said in a statement.

“Providing fans with a convenient way to watch their favorite teams, along with our network’s award-winning programming, was an essential addition. This season feels special, and we’re committed to exploring new ways to elevate our broadcasts for Rockets fans to enjoy.”

Astros owner Jim Crane echoed Feritta’s comments, adding, “Providing fans options on how they view our games is important as we continue to grow the game – we want to make it accessible to as large an audience as possible. We are looking forward to the 2026 season and more Astros fans watching our players compete for another championship.”

SCHN+ is available to customers in Texas; Louisiana; Arkansas; Oklahoma; and the following counties in New Mexico: Dona Ana, Eddy, Lea, Chaves, Roosevelt, Curry, Quay, Union, and Debaca. Fans outside these areas will need to subscribe to the NBA and MLB out-of-market services.

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This article originally appeared on CultureMap.com.

Rice University researchers unveil new model that could sharpen MRI scans

MRI innovation

Researchers at Rice University, in collaboration with Oak Ridge National Laboratory, have developed a new model that could lead to sharper imaging and safer diagnostics using magnetic resonance imaging, or MRI.

In a study recently published in The Journal of Chemical Physics, the team of researchers showed how they used the Fokker-Planck equation to better understand how water molecules respond to contrast agents in a process known as “relaxation.” Previous models only approximated how water molecules relaxed around contrasting agents. However, through this new model, known as the NMR eigenmodes framework, the research team has uncovered the “full physical equations” to explain the process.

“The concept is similar to how a musical chord consists of many notes,” Thiago Pinheiro, the study’s first author, a Rice doctoral graduate in chemical and biomolecular engineering and postdoctoral researcher in the chemical sciences division at Oak Ridge National Laboratory, said in a news release. “Previous models only captured one or two notes, while ours picks up the full harmony.”

According to Rice, the findings could lead to the development and application of new contrast agents for clearer MRIs in medicine and materials science. Beyond MRIs, the NMR relaxation method could also be applied to other areas like battery design and subsurface fluid flow.

“In the present paper, we developed a comprehensive theory to interpret those previous molecular dynamics simulations and experimental findings,” Dilipkumar Asthagiri, a senior computational biomedical scientist in the National Center for Computational Sciences at Oak Ridge National Laboratory, said in the release. ”The theory, however, is general and can be used to understand NMR relaxation in liquids broadly.”

The team has also made its code available as open source to encourage its adoption and further development by the broader scientific community.

“By better modeling the physics of nuclear magnetic resonance relaxation in liquids, we gain a tool that doesn’t just predict but also explains the phenomenon,” Walter Chapman, a professor of chemical and biomolecular engineering at Rice, added in the release. “That is crucial when lives and technologies depend on accurate scientific understanding.”

The study was backed by The Ken Kennedy Institute, Rice Creative Ventures Fund, Robert A. Welch Foundation and Oak Ridge Leadership Computing Facility at Oak Ridge National Laboratory.