TY - JOUR
T1 - RNA activation as a precision dosing modality
T2 - MTL-CEBPA for controlled enzyme elevation in MPS I-H
AU - Reebye, Vikash
AU - Skourti-Stathaki, Konstantina
AU - Vanezis, Konstantinos
AU - Song, Minsun
AU - Przybilla, Michael J.
AU - Purdie, Karin
AU - Tesone, Amelia J.
AU - Pizza, Grazia
AU - Jarvis, Sheba
AU - Raulf, Nina
AU - Andrikakou, Pinelopi
AU - Vasara, Jenni
AU - Setten, Ryan
AU - Nicholls, Joanna
AU - Hegre, Siv Anita
AU - Sætrom, Päl
AU - Habib, Robert
AU - Huang, Kai Wen
AU - Farzaneh, Farzin
AU - Li, Haitang
AU - Rossi, John J.
AU - Tomatsu, Shunji
AU - Khan, Shaukat
AU - Furness, Laura
AU - Wynn, Robert
AU - Whitley, Chester B.
AU - Jones, Simon A.
AU - Habib, Nagy A.
N1 - Copyright © 2026 Reebye, Skourti-Stathaki, Vanezis, Song, Przybilla, Purdie, Tesone, Pizza, Jarvis, Raulf, Andrikakou, Vasara, Setten, Nicholls, Hegre, Saetrom, Habib, Huang, Farzaneh, Li, Rossi, Tomatsu, Khan, Furness, Wynn, Whitley, Jones and Habib.
PY - 2026/1
Y1 - 2026/1
N2 - Background – Gene therapy and hematopoietic stem cell transplantation (HSCT) have transformed outcomes for severe mucopolysaccharidosis type I (MPS I-H), yet a critical unmet need remains. Children with MPS I-H frequently experience progressive skeletal, cardiac, and other complications despite timely HSCT, largely because enzyme activity cannot be safely and precisely titrated over time. Irreversible genetic modification via integrating vectors offers supra-physiological enzyme levels but carries long-term safety and re-dosing liabilities in patients treated early in life. Methods – We investigated RNA activation (RNAa) as a precision dosing strategy to enhance endogenous IDUA expression without permanent genome alteration. Using MTL-CEBPA, a small activating RNA that upregulates CEBPA transcription factor, we characterized CEBPA–IDUA relationships in vitro, in vivo, and in legacy clinical samples from cancer patients. Results – CCAAT enhancer binding protein alpha activation consistently increased IDUA mRNA across A549, IMR90, and mesenchymal stem cells. In wild-type mice, two intravenous MTL-CEBPA doses produced a ∼2-fold, durable increase in bone marrow IDUA mRNA and plasma enzyme activity, sustained for up to 4 weeks. In humanized bone marrow–transplanted MPS I-H mice, repeated dosing with MTL-CEBPA led to an approximately 2-fold increase in circulating IDUA activity compared with controls over the 3-weeks treatment period. The largest apparent separation from controls was observed in the homozygous cohort, although these genotype-specific differences should be interpreted cautiously given the limited subgroup sizes. In cancer patient–derived monocytes, increased CEBPA protein levels correlated with higher IDUA levels (R2 = 0.571). Consistent with this, approximately half of evaluable patients exhibited increased plasma IDUA activity following treatment. Conclusion – These translational data demonstrate that MTL-CEBPA delivers controlled, reversible enhancement of IDUA in the context of HSCT, providing robust pharmacodynamic proof-of-concept rather than definitive evidence of durable efficacy. By enabling titratable enzyme elevation without integrating vectors, RNAa therapeutics address a key unmet need in Hurler syndrome: safe fine-tuning of residual enzyme activity over a patient’s lifetime. With scalable, cost-effective oligonucleotide manufacturing, MTL-CEBPA and related RNAa therapeutics represent a clinically relevant adjuvant strategy for HSCT-treated MPS I-H, with potential for other enzyme deficiency disorders.
AB - Background – Gene therapy and hematopoietic stem cell transplantation (HSCT) have transformed outcomes for severe mucopolysaccharidosis type I (MPS I-H), yet a critical unmet need remains. Children with MPS I-H frequently experience progressive skeletal, cardiac, and other complications despite timely HSCT, largely because enzyme activity cannot be safely and precisely titrated over time. Irreversible genetic modification via integrating vectors offers supra-physiological enzyme levels but carries long-term safety and re-dosing liabilities in patients treated early in life. Methods – We investigated RNA activation (RNAa) as a precision dosing strategy to enhance endogenous IDUA expression without permanent genome alteration. Using MTL-CEBPA, a small activating RNA that upregulates CEBPA transcription factor, we characterized CEBPA–IDUA relationships in vitro, in vivo, and in legacy clinical samples from cancer patients. Results – CCAAT enhancer binding protein alpha activation consistently increased IDUA mRNA across A549, IMR90, and mesenchymal stem cells. In wild-type mice, two intravenous MTL-CEBPA doses produced a ∼2-fold, durable increase in bone marrow IDUA mRNA and plasma enzyme activity, sustained for up to 4 weeks. In humanized bone marrow–transplanted MPS I-H mice, repeated dosing with MTL-CEBPA led to an approximately 2-fold increase in circulating IDUA activity compared with controls over the 3-weeks treatment period. The largest apparent separation from controls was observed in the homozygous cohort, although these genotype-specific differences should be interpreted cautiously given the limited subgroup sizes. In cancer patient–derived monocytes, increased CEBPA protein levels correlated with higher IDUA levels (R2 = 0.571). Consistent with this, approximately half of evaluable patients exhibited increased plasma IDUA activity following treatment. Conclusion – These translational data demonstrate that MTL-CEBPA delivers controlled, reversible enhancement of IDUA in the context of HSCT, providing robust pharmacodynamic proof-of-concept rather than definitive evidence of durable efficacy. By enabling titratable enzyme elevation without integrating vectors, RNAa therapeutics address a key unmet need in Hurler syndrome: safe fine-tuning of residual enzyme activity over a patient’s lifetime. With scalable, cost-effective oligonucleotide manufacturing, MTL-CEBPA and related RNAa therapeutics represent a clinically relevant adjuvant strategy for HSCT-treated MPS I-H, with potential for other enzyme deficiency disorders.
KW - enzyme deficiency
KW - Hurler-Scheie syndrome
KW - MPS-IH
KW - RNA activation
KW - small activating RNA
KW - therapeutic oligonucleotides
KW - α-L-iduronidase
UR - https://www.scopus.com/pages/publications/105041223816
U2 - 10.3389/fmed.2026.1813362
DO - 10.3389/fmed.2026.1813362
M3 - Article
C2 - 42180769
AN - SCOPUS:105041223816
SN - 2296-858X
VL - 13
SP - 1813362
JO - Frontiers in Medicine
JF - Frontiers in Medicine
M1 - 1813362
ER -