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Open Access Basic Study Issue
Effect of different pre-stretching methods on the force degradation of elastomeric chains: an in vitro study
Journal of Prevention and Treatment for Stomatological Diseases 2026, 34(8): 780-790
Published: 20 August 2026
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Objective

To investigate the effect of different pre-stretching on the force degradation of elastomeric chains methods and provide experimental evidence for its application in clinical orthodontic treatment.

Methods

One control group (no pre-stretched treatment) and 15 experimental groups (pre-stretched to 25%, 50%, and 100% of the original length in 1-5 cycles) were set up by taking five loop lengths of short elastomeric chain and long elastomeric chain samples, respectively. The elastomeric chains from both the control and experimental groups were mounted on the testing fixture at identical initial lengths. To simulate tooth movement, the fixation device was adjusted to reduce the distance by 0.35 mm weekly. The remaining force of each group was measured at different time points over a 4-week period. Further, the experiment was conducted in a simulated salivary environment with additional thermal cycling.

Results

Pre-stretching length and cycles showed a significant interaction effect on the remaining force of elastomeric chains (P < 0.001). For short elastomeric chains, the groups pre-stretched to 25% (P = 0.001) and 50% (P = 0.005) of the original length for 3 cycles showed significantly higher remaining force values than the control group at 24 h. At 7, 14, 21, and 28 d, the groups pre-stretched to 25%, 50%, and 100% of the original length for 3 cycles consistently maintained higher remaining force values than the control group (P < 0.001). Within the groups of 3 pre-stretching cycles, no significant differences in remaining force were observed among the 50% group and the 25% (P = 0.617) or 100% (P = 0.229) groups at 7 d. However, at 14 d, the remaining force of the 50% group was significantly higher than that of both the 25% (P = 0.003) and 100% (P = 0.027) groups. At 21 d, the 50% group maintained a significantly higher remaining force compared to the 100% group (P = 0.020), but the difference compared to the 25% group did not reach statistical significance (P = 0.052). By 28 d, the remaining force of the 50% group remained significantly higher than that of both the 25% (P = 0.003) and 100% (P = 0.003) groups. For long elastomeric chains, the 50% pre-stretch (3 cycles) group showed significantly higher remaining force values than the control group at 8 h (P = 0.005) and 24 h (P < 0.001). Throughout the experimental period at 7, 14, 21, and 28 d, the remaining force values of the 25% (7, 14 d: P < 0.001; 21 d: P = 0.003; 28 d: P = 0.008), 50% (P < 0.001), and 100% (P < 0.001) original length pre-stretching for 3 cycles groups were consistently higher than those of the control group. Within the groups of 3 pre-stretching cycles, the remaining force of the 50% original length pre-stretching for 3 cycles group was significantly higher than that of the 25% original length pre-stretching for 3 cycles group at all of the time points from 7 to 28 d (P < 0.001). Although no statistically significant differences were observed between the 50% and 100% groups at 14 d (P = 0.068), the 50% group exhibited significantly higher remaining force than the 100% group at 7 d (P < 0.001), 21 days (P = 0.005), and 28 days (P < 0.001).

Conclusion

Appropriate pre-stretching methods can effectively delay the force degradation of the elastomeric chain. Pre-stretching to 50% original length for three cycles can maximize the delay of the force degradation of the elastomeric chain.

Open Access Review Article Issue
Research progress of orthodontic indirect bonding technology
Journal of Prevention and Treatment for Stomatological Diseases 2019, 27(3): 194-197
Published: 20 March 2019
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Accurate positioning of brackets is a necessary condition for ideal orthodontic treatment. Traditional bracket bonding technology has certain limitations, such as long operation time and poor accuracy. Indirect bonding technology is a method that bonding brackets on the model through intraoral impression or scanning, and then the brackets are accurately bonded to the tooth crowns using a transfer tray. In this article, the progression of transfer trays and adhesive agents, the application of digital technology in indirect bonding technology, indirect bonding for invisible appliances, and the prospect of this technology are reviewed. The literature review results show that indirect bonding technology can locate the bracket accurately, the operation is simple, the patient’s experience is comfortable, and the clinical efficiency can be significantly improved, the photocurable adhesive is an ideal adhesive for indirect bonding technology. With the development of digital technology, indirect bonding technology will be able to locate the brackets with increasing accuracy, thus achieving the "digital precision movement" of the teeth. The bonding technology of invisible appliance accessories is essentially a type of indirect bonding technology, It requires indirect bonding technology and digital technology to highly fit the needs of computer design accessories for the visual tooth movement and the use of indirect bonding technology to accurately bond accessories, ultimately achieving the desired tooth movement. Indirect bonding technology will play an increasingly important role with the development of digital technology and invisible correction technology.

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