Experimental Compound Offers Potential Treatment for Rare, Often Fatal Childhood Disease
Published online
The child's experimental treatment was made possible in part by a 2021 study led by
Banh's original work revealed that CoQ10 building in mitochondria starts when HPDL (the enzyme hydroxyphenylpyruvate dioxygenase-like) turns a compound called 4-hydroxymandelate (4-HMA) into another called 4-hydroxybenzoate (4-HB). Cells then use 4-HB to build a part of CoQ10 necessary for energy production.
Based on this discovery, the Pacold lab was able to show that both 4-HMA or 4-HB can be used to restore CoQ10 synthesis and counter related brain damage in mice engineered to lack HPDL. Led by
When the researchers were approached by the parents of the fast-declining child with HPDL deficiency, they shared their evidence with NYU Langone pediatric neurologists
"To our knowledge, this is the first demonstration that neurological symptoms of a primary CoQ10 deficiency can be stabilized or improved by supplying, not CoQ10 itself, but instead its smaller, more easily processed precursors, which cells then use to build more of the coenzyme," said Pacold, senior author of the new study in Nature.
Beyond rare diseases, cellular supplies of CoQ10 are known to drop as people develop heart disease, diabetes, and Alzheimer's disease, and in all of us as we age. For these reasons, the industry supplying CoQ10 as a dietary supplement is expected to represent a billion-dollar market within a decade. The problem, say the current study authors, is that, even at high doses, less than 5 percent of ingested CoQ10 makes it into the body because of its structure and size. This may explain why CoQ10 has failed to reverse the neurological symptoms of HPDL/CoQ10 deficiencies, the researchers say.
Recovery Window
For the current study, the Pacold lab acquired mice engineered to lack HPDL function, which were known to quickly become paralyzed. The team also found that these mice had smaller-than-normal mitochondria, as well as a smaller cerebellum and malfunctioning Purkinje cells, both of which control movement. Remarkably, replacement therapy with 4-HMA partially reversed the abnormalities by encouraging the building of the mouse version of CoQ10.
Then in 2023, with the mouse results in hand, Pacold met the parents, both of whom had genetic mutations that sabotaged HPDL function and caused two of their children to die in infancy. Their other child had thrived for 8 years but had recently declined.
A team quickly assembled to include Drs. Miller and Riboldi, members of NYU Langone's Office of Science & Research, Regulatory Affairs, Technology Opportunities & Ventures, the Office of General Counsel, and the Conflicts of Interest Management Unit (CIMU), and gained NYU Langone approval under its policies to clinically test 4-HB. The team next gained approval from the U.S. Federal Drug Administration for the boy's experimental treatment under a process called expanded access. It enables physicians caring for a patient with a life-threatening disease to use an experimental treatment when no other options are available. With subsequent approval from NYU Langone's Institutional Review Board, the patient's treatment started in
Treated daily with the experimental compound dissolved in water, the patient saw improved balance and endurance over the following weeks. Just before the patient departed from NYU Langone two months into the trial (to continue it at home), Miller says, the boy went for one-and-a-half mile walk with his family in
The discovery of the experimental treatment was serendipitous, occurring while the Pacold Lab was investigating the anti-cancer potential of targeting CoQ10 production. During that test, the team happened to discover that the CoQ10 precursors caused recovery from neurodegenerative processes in one of its animal models. This ultimately led to an effort across NYU Langone to design the child's treatment.
Further, children with HPDL deficiencies are known to have a range of disease severity depending on their specific versions of key variant genes, from no function (fatal) to levels of partial function. The clinical and research teams theorize that the treated child still had some HPDL function and so was able to develop normally until a certain stage. The team's mouse data suggest that there is a time window in neural development during which the effects of HPDL deficiency will be most reversible with CoQ10 precursor treatment, and after which treatment will have little effect. Identifying this window, along with the most effective dose, in larger studies will be the focus of the next round of research.
NYU Langone owns the intellectual property developed in the Pacold lab and covering the treatment outlined above, which NYU Langone and
Along with Pacold, Banh, Shi, Riboldi, and Miller, NYU Langone study authors included
"Research breakthroughs show their true impact when they change a family's life,"
Authors at other institutions were
The research was supported by National Institutes of Health grants NIGMS R35 MIRA 1R35GM147119, and NCI R37CA289040, Perlmutter Cancer Center grant P30CA016087, a Damon Runyon-Rachleff Innovation Award, and Dale Frey Breakthrough awards DRR 63-20 and DRG-50-22, Tara Miller Melanoma Foundation / MRA Young Investigator Award 668365, and American Cancer Society Research Scholar Award RSG-21-115-01-MM. Additional funding came from the Harry J. Lloyd Charitable Trust, an Irma T. Hirschl Career Scientist Award, a Concern Foundation Conquer Cancer Now Grant, and from NYU Langone Health Technology Opportunities and Ventures.
The clinical portion of the research was supported by an NYU CTSA grant (includes UL1 TR001445, KL2 TR001446, and TL1 TR001447) and by funding provided through a Pershing Square-Sohn Cancer Prize from the Pershing Square Foundation.
Pacold, Banh, Shi, and Spillier are co-inventors on patents related to the use of 4-HMA, 4-HB, and analogues in the diagnosis and treatment of neurodevelopmental and other diseases assigned to New York University. The treatment was conducted and supervised by Miller and Riboldi under an institutional conflict-of-interest management plan implemented by NYU Langone Health in accordance with its policies. Pacold consulted on the clinical protocol, while Miller and Riboldi directed the course of treatment in accordance with the plan.
About NYU Langone Health
NYU Langone Health is a fully integrated health system that consistently achieves the best patient outcomes through a rigorous focus on quality that has resulted in some of the lowest mortality rates in the nation. Vizient Inc. has ranked NYU Langone No. 1 out of 115 comprehensive academic medical centers across the nation for three years in a row, and U.S. News & World Report recently placed nine of its clinical specialties among the top five in the nation. NYU Langone offers a comprehensive range of medical services with one high standard of care across seven inpatient locations, its Perlmutter Cancer Center, and more than 320 outpatient locations in the
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SOURCE NYU Grossman School of Medicine and NYU Langone Health
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