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Updated: May 24, 2026

Merging Absolute and Relative Quantitative PCR Data to Quantify STAT3 Splice Variant Transcripts
Published on: October 9, 2016
Activation of a cryptic splice site in a potentially lethal coagulation defect accounts for a functional protein
Nicola Cavallari1, Dario Balestra, Alessio Branchini
1Department of Biochemistry and Molecular Biology, and LTTA, University of Ferrara, Italy.
Abstract:
Changes at the invariable donor splice site +1 guanine, relatively frequent in human genetic disease, are predicted to abrogate correct splicing, and thus are classified as null mutations. However, their ability to direct residual expression, which might have pathophysiological implications in several diseases, has been poorly investigated. As a model to address this issue, we studied the IVS6+1G>T mutation found in patients with severe deficiency of the protease triggering coagulation, factor VII (FVII), whose absence is considered lethal. In expression studies, the IVS6+1G>T induced exon 6 skipping and frame-shift, and prevented synthesis of correct FVII transcripts detectable by radioactive/fluorescent labelling or real-time RT-PCR. Intriguingly, the mutation induced the activation of a cryptic donor splice site in exon 6 and production of an in-frame 30bp deleted transcript (8 ± 2%). Expression of this cDNA variant, lacking 10 residues in the activation domain, resulted in secretion of trace amounts (0.2 ± 0.04%) of protein with appreciable specific activity (48 ± 16% of wt-FVII). Altogether these data indicate that the IVS6+1G>T mutation is compatible with the synthesis of functional FVII molecules (~0.01% of normal, 1pM), which could trigger coagulation. The low but detectable thrombin generation (352 ± 55nM) measured in plasma from an IVS6+1G>T homozygote was consistent with a minimal initiation of the enzymatic cascade. In conclusion, we provide experimental clues for traces of FVII expression, which might have reverted an otherwise perinatally lethal genetic condition.
Insights
A common genetic mutation in factor VII (FVII) causes severe deficiency but surprisingly allows trace functional protein production. This residual FVII expression may prevent lethal outcomes in patients with this coagulation disorder.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Splice site mutations are often classified as null mutations in genetic diseases.
- The residual expression from splice site mutations and its pathophysiological impact remain poorly understood.
- Factor VII (FVII) deficiency, caused by mutations, is typically considered lethal.
Observation:
- The IVS6+1G>T mutation in FVII was studied as a model for splice site mutations.
- This mutation induced exon skipping and frame-shift, preventing normal FVII transcript synthesis.
- A cryptic splice site was activated, producing a small amount of in-frame deleted FVII transcript.
Findings:
- Expression studies revealed trace amounts of functional FVII protein (0.2%) with significant specific activity.
- The IVS6+1G>T mutation allows synthesis of functional FVII molecules at approximately 0.01% of normal levels.
- Detectable thrombin generation was observed in a homozygote, indicating minimal coagulation cascade initiation.
Implications:
- The IVS6+1G>T mutation is not a null mutation, allowing for residual FVII expression.
- This residual FVII expression could have significant pathophysiological implications, potentially preventing lethal outcomes.
- Understanding residual protein expression from genetic mutations is crucial for disease management and therapeutic strategies.
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