Lumasiran at birth changes the trajectory of primary hyperoxaluria type 1: same disease, different outcomes in two

Licia Peruzzi1,2, Marta Leporati3,

  • 1Pediatric Nephrology Unit, Regina Margherita Children's Hospital, AOU Città della Salute e Della Scienza di Torino, Piazza Polonia 94, 10126, Turin, Italy. licia.peruzzi@unito.it.

PubMed

Insights

Early lumasiran treatment in a newborn with primary hyperoxaluria type 1 (PH1) effectively managed oxalate metabolism and prevented disease symptoms. This approach, combined with supportive care, showed no adverse events over 24 months.

Area of Science:

  • Biochemistry
  • Genetics
  • Pediatrics

Background:

  • Primary hyperoxaluria type 1 (PH1) is a rare genetic disorder.
  • Lumasiran, an RNA interference therapeutic, is approved for PH1 but its use in newborns is not well-documented.
  • A family history of severe PH1 progression informed early intervention in a newborn.

Purpose of the Study:

  • To assess oxalate and glycolate metabolism in a newborn with PH1 treated at birth with lumasiran.
  • To evaluate the safety and efficacy of early lumasiran intervention in neonatal PH1.

Main Methods:

  • A newborn with PH1 received lumasiran (6 mg/kg) at 6 hours of life, with subsequent doses and pyridoxine.
  • Treatment included intravenous hyperhydration, oral water, and potassium citrate.
  • Oxalate and glycolate levels were monitored, alongside clinical assessment for 24 months.

Main Results:

  • Glycolate oxidase inhibition showed a 15-day latency, with transiently dangerous oxalate levels observed.
  • Blood oxalate supersaturation was not reached after 30 days of treatment.
  • No adverse events were reported during the 24-month follow-up period.

Conclusions:

  • Early lumasiran treatment, initiated at birth, is effective in managing PH1 in newborns.
  • Combined therapy with hyperhydration and supportive measures ensures symptom absence.
  • This case demonstrates the safety and efficacy of neonatal lumasiran intervention for PH1.

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