跳至主要内容
临床试验/NCT07535372
NCT07535372招募中不适用

Nano-ink Based Antisense oligonUcleoTIde deLivery for Ultra-personaIized Treatment of Syndromic Craniosynostoses

Fondazione Policlinico Universitario Agostino Gemelli IRCCS2 个研究点 分布在 2 个国家目标入组 12 人开始时间: 2026年4月20日最近更新:
适应症

试验速览

阶段
不适用
状态
招募中
入组人数
12
试验地点
2
主要终点
ASO design and development

研究概览

简要总结

Syndromic craniosynostoses (SCS) are rare genetic disorders defined by premature cranial suture fusion, resulting in abnormal craniofacial development and constrained brain growth. These conditions, including Muenke, Saethre-Chotzen, Crouzon, Apert, Pfeiffer and craniofrontonasal syndromes, are typically caused by gain- or loss-of-function variants in key regulators of suture biology such as FGFR1/2/3, TWIST1 and TCF12. Current management is exclusively surgical, relying on early cranial vault remodelling and subsequent reconstructive procedures, which carry substantial risks (e.g. blood loss, infection, re-synostosis) and do not address the underlying molecular etiology.

Recent advances in RNA-based therapeutics have demonstrated the potential of mutation-specific approaches to normalize aberrant osteogenic differentiation in patient-derived cells. However, clinical translation remains limited by inefficient delivery and lack of sustained therapeutic activity. The NAUTILUS project aims to overcome these barriers by developing a non-invasive, ultra-personalized therapeutic platform based on mutation-specific antisense oligonucleotides (ASOs) delivered via a nano-engineered system.

The project will design and validate patient-tailored ASOs targeting the molecular drivers of SCS, with the goal of either silencing pathogenic gain-of-function alleles or restoring physiological expression in loss-of-function contexts. Functional efficacy will be assessed in patient-derived cellular models by evaluating transcript modulation and rescue of protein function. In parallel, NAUTILUS will optimize a nano-ink delivery platform combining PLGA-PEG-bis-sulfone nanoparticles with a GelMA-based hydrogel scaffold, enabling localized, controlled, and sustained ASO release within the cranial suture niche.

Preclinical validation in relevant mouse models will assess the capacity of this platform to delay or prevent pathological suture ossification, ultimately reducing the need for repeated surgical interventions. By directly targeting the genetic basis of disease, NAUTILUS proposes a transformative approach to SCS management. This strategy has the potential to decrease treatment invasiveness, improve clinical outcomes, and enhance quality of life, establishing a precision medicine paradigm for rare craniofacial disorders.

研究设计

研究类型
Observational
观察模型
Cohort
时间视角
Prospective

入排标准

年龄范围
— 至 5 Years(Child)
性别
All
接受健康志愿者

入选标准

  • Paediatric patients (0-5 years), with a confirmed genetic diagnosis of syndromic craniosynostosis involving pathogenic GoF or LoF variants in FGFR1-3, TWIST1, TCF12, EFNB1, ERF, MSX2, or ALX
  • Availability of cranial-suture tissue fragments obtained during surgical remodelling procedures and classified as surgical waste.
  • Signed informed consent from parents or legal guardians.

排除标准

  • Patients older than 5 years.
  • Patients aged 0-5 years with conditions unrelated to syndromic craniosynostosis in the selected genes.
  • Genetic variants of uncertain significance or undetermined molecular diagnosis.
  • Tissue samples with insufficient quantity or inadequate quality for cell isolation or culture.
  • Refusal of informed consent.

结局指标

主要结局

ASO design and development

时间窗: 12 months

Development of personalized therapeutic ASOs to restore the expression/function of disease-causing genes in patient-derived suture cells.

次要结局

  • Nano-ink development(16 months)
  • In vivo validation(16 months)

研究者

申办方类型
Other
责任方
Sponsor

研究点 (2)

Loading locations...

相似试验