Many families face a long wait for answers when standard genetic tests come back inconclusive. A new review looked at 646 patients with rare genetic disorders who had already received negative or unclear results from standard testing. The team found that long-read whole genome sequencing offered a clear path forward. This advanced method helped 29 individuals receive a definitive diagnosis. That represents a 4.5% success rate among those who previously had no answers. The test also identified different types of genetic changes. Structural variants made up the majority of the findings. Single-nucleotide variants and methylation changes also played a role in solving these cases. The researchers used a standard tool to check for risk of bias. They noted that the results apply specifically to the nine studies included in this review. This approach shows promise for improving diagnostic rates when applied after standard testing.
Long-read sequencing yields 4.5% more diagnoses in unresolved rare disease casesNew genetic test solves mysteries for hundreds of patients with rare disorders
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This systematic review evaluated the diagnostic yield of long-read whole genome sequencing (lrWGS) in patients with rare genetic disorders who had inconclusive or negative results from standard testing, including short-read sequencing. The review included 9 studies with a total of 646 previously unresolved cases.
Across these studies, lrWGS provided a definitive diagnosis in 29 individuals, corresponding to a diagnostic yield of 4.5%. Among the identified variants, structural variants (SVs) accounted for the majority (41.67%), followed by combined SV/single-nucleotide variants (20.83%) and methylation changes (16.67%).
The authors assessed risk of bias using the QUADAS-2 tool, but other limitations include the small sample size and potential lack of generalizability beyond the included studies. The review does not report on clinical outcomes beyond diagnostic yield, so the impact on patient management remains unclear.
Despite these limitations, lrWGS shows potential for improving diagnostic rates in previously unresolved rare disease cases, particularly when applied after whole-exome sequencing and combined with advanced tools such as phasing and methylation profiling. However, further research is needed to confirm these findings and assess clinical utility.