HSAN-9

TECPR2 | 2021

What Is HSAN-9?

HSAN-9 is a type of CMT caused by autosomal recessive mutations in the TECPR2 gene. This gene provides instructions for making a protein involved in autophagy, the process by which nerve cells clear and recycle their internal components. Mutations in the TECPR2 gene disrupt this function, leading to impaired nerve signal transmission.

HSAN-9 is autosomal recessive, meaning that both copies of the gene must have a mutation to cause this subtype.

Clinical Features

The age of symptom onset in HSAN-9 is variable, ranging from childhood to adulthood. The disease involves loss of sensation that begins in the hands and feet (glove-and-stocking distribution) and progresses over time towards the center of the body. Nerve conduction studies usually show somewhat slowed conduction velocities and reduced amplitudes, consistent with an axonal form of CMT.

HSAN-9 symptoms may include:

  • Progressive loss of sensation in the feet and hands
  • Loss of pain and temperature sensation
  • Autonomic dysfunction
  • Cognitive impairment and developmental delay
  • Spasticity (muscle stiffness) and ataxia (impaired balance and coordination)
  • Reduced or absent reflexes
  • Foot deformities, including high arches, and hammertoes (clawed toes)
  • Distal weakness that develops as the disease progresses
  • Foot drop
  • Additional symptoms not listed here

Disease Course

HSAN-9 shows wide variability in severity and progression. Some individuals are mildly affected, while others develop a more severe disease. Disease progression is generally slow, and life expectancy is not reduced.

Clinical Basics

Subtype
HSAN-9

Classification
HSAN

Neuropathy Type
Axonal

Inheritance Pattern
autosomal recessive

Genetic Context

HGNC-Approved Gene Symbol
TECPR2

Gene Full Name
tectonin beta-propeller repeat containing 2

HGNC Gene Alias(es)
KIAA0329

Chromosome
14q32.33

Zygosity of Responsible Variant
Homozygous or Compound Heterozygous

Variant Mechanism

Loss of Function (LoF)

Details

Mechanistic basis:
Complete loss

Confidence:
High

Prediction:
Autophagosome formation fails in HSAN-9, and the evidence predicts a biallelic loss-of-function mechanism: recessive TECPR2 variants are predominantly truncating, including a founder frameshift in Bukharian Jewish families, and they eliminate an autophagy adaptor that also supports ER-to-Golgi trafficking. Sensory and autonomic degeneration appears alongside central hypoventilation and developmental involvement, consistent with the breadth of the protein's role. Wild-type TECPR2 add-back is predicted to rescue.

Rationale:
Truncating alleles on both chromosomes with unaffected heterozygous parents point to an absent adaptor, and patient-derived cells show impaired autophagosome formation, linking genotype to pathway directly. The wide phenotype follows from TECPR2 acting in general autophagic flux rather than in a sensory-specific program.

ClinVar Pathogenic Variants

View TECPR2 ClinVar Variants

HSAN-9 OMIM Entry

HSAN-9 OMIM

TECPR2 OMIM Entry

TECPR2 OMIM

More Info

HSAN-9 Research Opportunity

CMT Natural History Study

Original Discovery Publication

Publication Title

Clinical, Neuroimaging, and Molecular Spectrum of TECPR2-Associated Hereditary Sensory and Autonomic Neuropathy with Intellectual Disability

Authors

Neuser, S., Brechmann, B., Heimer, G., Brösse, I., Schubert, S., O’Grady, L., Zech, M., Srivastava, S., Sweetser, D. A., Dincer, Y., Mall, V., Winkelmann, J., Behrends, C., Darras, B. T., Graham, R. J., Jayakar, P., Byrne, B., Bar-Aluma, B. E., Haberman, Y., Szeinberg, A., Aldhalaan, H.M., Hashem, M., Tenaiji, A.A., Ismayl, O., Al Nuaimi, A.E., Maher, K., Ibrahim, S., Khan, F., Houlden, H., Ramakumaran, V.S., Pagnamenta, A.T., Posey, J.E., Lupski, J.R., Tan, W., ElGhazali, G., Herman, I., Muñoz, T., Repetto, G.M., Seitz, A., Krumbiegel, M., Poli, M.C., Kini, U., Efthymiou, S., Meiler, J., Maroofian, R., Alkuraya, F.S., Jamra, R.A., Popp, B., Ben-Zeev, B., Ebrahimi-Fakhari, D.

Publication Date
April 13, 2021

Updated: July 18, 2026 | By: K. Raymond

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