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Standardized testing frameworks are needed to improve safety of 3D-printed surgical devices in austere environmentsReview Evaluates Testing Methods for 3D-Printed Surgical Devices

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Key Takeaway
Note that 3D-printed surgical devices currently lack standardized testing for biocompatibility and sterilization.

This systematic review evaluates the methodologies used to test 3D-printed surgical devices, such as external fixators and surgical sets, intended for use in austere environments including military settings and space exploration. The review analyzed 15 studies to assess manufacturing specifications, mechanical performance, sterilization, biocompatibility, and usability.

Key findings indicate that 13 out of 15 studies utilized Fused Deposition Modeling printers and all 15 used thermoplastic materials. However, testing consistency was low: only 2 of 15 papers used ASTM standards for mechanical testing, while 2 used self-developed protocols. Regarding usability, 7 of 15 papers reported analysis. Sterilization testing was reported in 3 of 15 papers, but only 1 evaluated the effect on the device. Notably, no biocompatibility testing was reported in any of the 15 studies.

The authors note that inconsistent testing methods result in incomparable data across the literature. Because the review focuses on testing methodologies rather than clinical outcomes, the evidence regarding direct patient impact is not provided. The review suggests adopting a framework based on ISO, IEC, and ASTM standards to improve the safety and standardization of these devices in resource-limited or remote settings.

This review looked at 15 studies regarding 3D-printed surgical devices, such as external fixators and surgical sets. These devices are designed for use in austere environments, which include low-income countries, military settings, and space exploration. The study focused on how these tools are tested for safety and performance before they can be used by medical professionals.

Researchers found that most devices were made using thermoplastic materials and Fused Deposition Modeling printers. However, the study found significant inconsistencies in how these tools were tested. For example, only a few studies used standard mechanical testing, and none of the reports included data on biocompatibility. Only one study actually tested how sterilization affected the device's performance.

Because testing methods vary so much, it is difficult to compare the data between different devices. The review suggests using international standards to create a more consistent way to test these tools. This could help ensure that 3D-printed equipment is safe and reliable for use in remote locations. This study focuses on testing methods rather than direct patient outcomes.

What this means for you:
The study highlights a need for standardized testing to ensure 3D-printed surgical tools are safe for remote use.

Common questions

What materials are used in these 3D-printed tools?

All 15 studies reviewed in this report used thermoplastic materials to create the 3D-printed surgical devices. These devices include items like surgical sets and external fixators designed for use in remote areas.

How are these devices tested for safety and use?

Testing results were inconsistent across the 15 studies. While 7 studies reported on usability, only 3 reported on sterilization testing. Furthermore, none of the 15 studies reported any data regarding biocompatibility testing.

Are these tools ready for use in remote areas?

The study does not provide clinical outcomes for patients. It focuses on the fact that current testing methods are inconsistent. Experts suggest using international standards to improve the safety and reliability of these devices.

Study Details

Study typeMeta analysis
EvidenceLevel 1
PublishedSep 2026
View Original Abstract ↓
Three-dimensional (3D) printing is a common manufacturing technique. It is being adopted to produce essential surgical equipment in austere settings around the world. However, the evaluation of these products remains inconsistent. This raises safety concerns and limits translation to clinical use. To address this, this systematic review aims to identify 3D-printed surgical devices intended for austere environments and examine their evaluation methodologies. The findings will inform the development of an evaluation framework that supports the design of patient-safe devices. Medical and engineering bibliographic databases were searched to identify literature describing 3D-printed surgical devices for use in austere environments. Two independent blinded reviewers screened articles in two stages using abstracts and full texts. The review was conducted in accordance with PRISMA guidelines. In line with the EU Medical Device Regulation, device evaluations were categorised into manufacturing specifications, mechanical performance, sterilisation, biocompatibility, and usability. Reported methods of device evaluation were extracted and compared against the relevant published standards. 15 studies met the inclusion criteria. The austere environments included low-middle income countries, military settings, and space exploration. 13 out of 15 studies used Fused Deposition Modeling printers. All materials were thermoplastic. Printed equipment ranged from external fixators to surgical sets. The printing details were well reported. However, there was inconsistency in testing methods, resulting in data that is incomparable across the studies. 2 of 15 papers conducted mechanical testing for external fixators using American Society for Testing and Materials standards but used different parameters. 2 studies used self-developed mechanical testing protocols. 7 of 15 papers reported usability analysis using various methodologies. 3 of 15 papers described testing for sterilisation of the equipment, but only one paper evaluated its effect on the device. There was no biocompatibility testing. Despite the potential implications for patient safety, all 15 studies showed considerable variability in device evaluation methods. To address this, this review recommends adopting established standards from ISO, IEC and ASTM International. The proposed framework covers the key domains: manufacturing specifications, mechanical performance, sterilisation, biocompatibility and usability. Implementation of this structured approach may enhance standardisation and support the development of safer devices.
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