The McKnight Endowment Fund for Neuroscience has selected four projects to receive the 2026 Neurobiology of Brain Disorders Awards. The awards will total $1.2 million for research on the biology of brain diseases, with each project receiving $100,000 per year in each of the next three years for a total of $300,000 funded per project.
Sinusuportahan ng Mga Neurobiology of Brain Disorder (NBD) ang makabagong pananaliksik ng mga siyentista sa US na nag-aaral ng mga sakit na neurological at psychiatric. Hinihimok ng mga parangal ang pakikipagtulungan sa pagitan ng pangunahing at klinikal na neurosensya upang isalin ang mga natuklasan sa laboratoryo tungkol sa utak at sistema ng nerbiyos sa mga pagsusuri at therapies upang mapabuti ang kalusugan ng tao.
Ang isang karagdagang lugar ng interes ay ang kontribusyon ng kapaligiran sa mga sakit sa utak. Ang stress sa kapaligiran sa maagang buhay ay isang malakas na salik sa pagtatapon para sa mga sakit na neurological at psychiatric sa kalaunan. Ipinapakita ng mga pag-aaral na ang mga komunidad na may kulay ay nasa mas mataas na panganib para sa mga stressor na ito, na mula sa kapaligiran (hal. klima, nutrisyon, pagkakalantad sa mga kemikal, polusyon) hanggang sa panlipunan (hal. pamilya, edukasyon, pabahay, kahirapan). Mula sa klinikal na pananaw, ang pag-unawa kung paano nakakatulong ang mga salik sa kapaligiran sa sakit sa utak ay mahalaga para sa pagbuo ng mga epektibong therapy.
“From uncovering how physiological temperature reshapes pain signaling, to mapping circuits that connect early life adversity to fear, to restoring motor plasticity in the aging brain, the researchers selected for this year’s award are pushing the frontiers of neuroscience in bold and much needed directions,” said Michael Ehlers, M.D., Ph.D., Chair of the Awards Committee. This year’s projects include investigations into temperature as a missing variable in pain biology and drug discovery, the development of septal dopamine circuits controlling fear in the context of early life stress, the rescue of cortical plasticity and motor learning in aging, and an environmentally focused project examining how early life high fructose exposure impairs microglial function and disrupts neurodevelopment. These efforts promise to reshape our understanding of brain disease and point to transformative therapeutic possibilities for the future.”
Ang mga parangal ay inspirasyon ng mga interes ni William L. McKnight, na nagtatag ng McKnight Foundation noong 1953 at gustong suportahan ang pananaliksik sa sakit sa utak. Ang kanyang anak na babae, si Virginia McKnight Binger, at ang lupon ng McKnight Foundation ay nagtatag ng programang neuroscience ng McKnight sa kanyang karangalan noong 1977.
Maramihang mga parangal ang ibinibigay bawat taon. Ang apat na parangal ngayong taon ay:
With 177 applications received this year, the awards are highly competitive. A committee of distinguished scientists reviews the letters and invites a select few researchers to submit full proposals. In addition to Dr. Ehlers, the committee includes Nancy Bonini, Ph.D, University of Pennsylvania; Nicole Calakos, M.D., Ph.D., Duke University; Gloria Choi, Ph.D., Massachusetts Institute of Technology; Joseph G. Gleeson, M.D., University of California San Diego; Evan Macosko, M.D., Ph.D., Broad Institute of Massachusetts Institute of Technology and Harvard University; and Michael Sofroniew, Ph.D., M.D., University of California, Los Angeles.
Applications for both the 2027 Neurobiology of Brain Disorders Awards and Scholar Awards open August 3, 2026, and will be accepted through October 15 and November 3, 2026, respectively.
Tungkol sa McKnight Endowment Fund para sa Neuroscience
Ang McKnight Endowment Fund para sa Neuroscience ay isang independiyenteng organisasyon na pinondohan lamang ng McKnight Foundation ng Minneapolis, Minnesota, at pinamumunuan ng isang board na kinabibilangan ng mga kilalang neuroscientist mula sa buong bansa. Sinuportahan ng McKnight Foundation ang neuroscience research mula noong 1977. Itinatag ng Foundation ang Endowment Fund noong 1986 upang maisakatuparan ang isa sa mga intensyon ng founder na si William L. McKnight (1887–1978), isa sa mga naunang pinuno ng 3M Company.
Bilang karagdagan sa Neurobiology of Brain Disorders Awards, nagbibigay din ang endowment fund ng taunang pagpopondo ng parangal sa pamamagitan ng McKnight Scholar Awards, na sumusuporta sa mga neuroscientist sa mga unang yugto ng kanilang mga karera sa pananaliksik.
Neurobiology ng Brain Disorder Awards

Juan Du, Ph.D., Professor, Northwestern University, Evanston, IL
Temperature as a Missing Dimension in Pain Neurobiology and Therapy
Temperature is one of the most fundamental signals sensed by the nervous system, shaping experiences from the warmth of sunlight to the pain of touching a hot surface. The Du laboratory studies how the body detects temperature and how disruptions in these pathways contribute to neurological disorders.
Recent discoveries from the Du laboratory suggest that temperature is a previously overlooked “missing dimension” in biomedical research and drug discovery. Most biological experiments and drug screenings are performed at room temperature, even though proteins function in the body at 37°C. The lab discovered that important protein states and drug interactions can remain hidden under conventional laboratory conditions and only emerge at body temperature. These findings may help explain why some drug candidates succeed in early studies but fail later in development. Through this project, the team aims to uncover how temperature-driven protein dynamics contribute to chronic pain and to develop “temperature-aware” therapies with greater precision and fewer side effects.

Corey Harwell, Ph.D., Professor, University of California, San Francisco, San Francisco, CA
How Early Life Stress Shapes the Development of Septal Dopamine Circuits Controlling Fear
Anxiety disorders affect millions of people worldwide, and early life stress is one of the strongest risk factors for developing anxiety and trauma-related disorders later in life. Despite this clear link, the mechanisms by which stressful experiences during childhood alter the developing brain remain poorly understood. Emerging evidence suggests that disruptions in dopamine circuits involved in fear, safety learning, and emotional regulation may contribute to long-lasting changes in behavior.
The Harwell lab aims to determine how early life stress alters the development of a specific dopamine circuit connecting the ventral tegmental area and lateral septum, two brain regions involved in regulating fear and anxiety-related behaviors. Using advanced genetic, imaging, and behavioral approaches in mice, the lab will define how stress changes the maturation and activity of this circuit and whether these alterations impair the ability to recognize when danger has passed. Overall, this work could identify new therapeutic targets and developmental windows for treating anxiety and trauma-related disorders.

Takaki Komiyama, Ph.D., Professor, University of California, San Diego, San Diego, CA
Rescuing Motor Learning Failure in Aging
The brain continuously reshapes itself through experience, allowing people to learn new skills, adapt to changing environments, and recover from challenges. Yet this remarkable flexibility is not unlimited. As we age and in many neurological conditions, the brain circuits become less able to reorganize itself in an adaptive manner, making learning and recovery increasingly difficult. Takaki Komiyama’s research seeks to uncover the fundamental rules that allow the brain to remain adaptable throughout life and to understand why those mechanisms sometimes fail.
His laboratory combines innovative approaches that allow researchers to observe and precisely influence the activity of individual neurons in the brains of behaving animals. By studying how experiences alter neural circuits, his team aims not only to reveal how learning naturally occurs, but also to determine whether the brain’s ability to change can be restored or enhanced when it becomes impaired. This work seeks to bridge fundamental discoveries about how the brain learns with future strategies to improve learning, recovery, and brain health across the lifespan.

Justin Perry, Ph.D., Associate Member, Memorial Sloan Kettering Cancer Center, New York, NY
Understanding How Early Life High Fructose Exposure Suppresses Microglia Efferocytosis and Disrupts Neurodevelopment
Despite its success as a low-cost food additive, there has been significant attention on the potential downsides to the dramatic increase in use of high fructose corn syrup across the world, especially in foods marketed to children. Emerging evidence suggests that high fructose consumption by pregnant mothers (via breast milk) or by adolescent children is associated with the development of mood, anxiety, and autism spectrum disorders during adolescence. Despite this emerging link and the growing prevalence of such disorders, very little is known about how high fructose exposure affects neurodevelopment.
During development, the human brain not only massively expands the number of new neurons formed but must also remove neurons that are deemed surplus. This process is achieved by specialized cells, called microglia, who must manage this burdensome but essential process in the harsh environment of the developing brain. Dr. Perry aims to apply cutting-edge approaches from multiple fields to uncover the metabolic pathways that support phagocytosis by microglia and to understand why these pathways go awry when the brain is exposed to high fructose.



