$$\rightleftharpoonup{xx}$$
$$\longleftharp{xx}$$,
$$\longrightharp{xx}$$,
Oronasal fistula (ONF), an abnormal opening between the oral and nasal cavities, clinically manifests as a defect in a structural area from the alveolar process to the uvula, which commonly occurs as a complication following cleft palate repair1. Patients with ONF experience food reflux, articulation disorders, and impaired velopharyngeal function, significantly impacting their quality of life2,3,4. The rate of post-operative ONF ranges from 2.4% to 55% due to factors such as cleft width, Veau type, and surgical method5,6,7,8. Additionally, the recurrence rate after ONF repair is high, ranging from 0% to 43%9.
Several novel treatments have recently shown promise in the field of ONF, including different materials, drugs, and novel techniques10,11,12,13,14,15,16,17. Accurate evaluation of therapeutic effects is essential as it provides the basis for selecting and further developing ONF treatments. However, obtaining a valid assessment in the short term for therapeutic effects other than surgery is challenging, as the characteristics of ONFs vary among different patients. Therefore, establishing an ONF disease model is necessary to verify the effectiveness of these treatment methods.
For several decades, researchers have generated the oronasal fistula (ONF) model in various animal species, including rats18,19, piglets20,21, minipigs22, and dogs23, as these species possess a substantial hard palate suitable for surgical manipulation. However, mice have a genetic sequence and whole genome similar to that of humans, making them an important model for researching and developing new drugs24,25,26. Furthermore, mice offer little variation from batch to batch, making them a favorable choice for establishing the ONF model12,13,27.
However, the detailed steps for creating ONF were not described, and the stability of the ONF size was not taken into consideration. Additionally, the verification of ONF formation relied solely on observation28, without ensuring direct communication between the oral and nasal cavities. It was not demonstrated through other means, such as the mouse's loss of body weight due to difficulties in eating caused by the ONF. Furthermore, normal variation in wound size was not considered, which is crucial for studies on drugs or materials that promote or inhibit wound healing. Therefore, there is a strong need to establish a stable and validated ONF model.
The objective of this study was to develop a practical ONF model that addresses the aforementioned issues, with the hope that this protocol will serve as the foundation for future research on the mechanisms of palatal wound healing and novel treatments for ONF.