Phenotypic Heterogeneity of Familial Hypertriglyceridemia: A Case Series of a Mother and Three Siblings with Diverse Clinical Outcomes

Authors

  • Anak Agung Ngurah Adhipa Prasada Faculty of Medicine, Universitas Udayana
  • Cyndiana Sinardja Faculty of Medicine, Universitas Udayana, Indonesia

DOI:

https://doi.org/10.71341/bmwj.v3i2.60

Keywords:

cascade screening — central to your diagnostic approach across the family, coronary microvascular dysfunction — specifically featured in Case 3, gestational hypertriglyceridemia — the youngest daughter’s pregnancy case, dyslipidemia management — broader indexing for treatment-focused readers

Abstract

Background: Familial hypertriglyceridemia (FHTG) is a common autosomal dominant lipid disorder characterized by elevated plasma triglycerides (TG). According to the AHA/ACC 2018 and ESC/EAS 2019 guidelines, TG levels are classified as borderline high (150–199 mg/dL), high (200–499 mg/dL), severe (500–999 mg/dL), or very severe (≥1000 mg/dL). Its clinical expression is highly variable even within the same family, influenced by secondary factors including diet, obesity, diabetes, alcohol intake, and medications.

Case Description: We present a case series of four family members — a 63-year-old mother (proband) and her three children aged 28, 33, and 41 years — all exhibiting hypertriglyceridemia with markedly different TG levels (118–1061 mg/dL), comorbidity burden, and clinical outcomes. Target TG levels for therapy are <150 mg/dL (normal), or <500 mg/dL as an urgent target to prevent acute pancreatitis in patients with severe hypertriglyceridemia. All family members are currently managed with fenofibrate, with variable degrees of TG control: the mother has achieved the therapeutic target (<150 mg/dL), the first daughter and brother demonstrate persistent elevation above target despite pharmacotherapy, and the youngest daughter exhibits persistent severe hypertriglyceridemia despite pharmacotherapy (TG 1061 mg/dL, far exceeding the ≥1000 mg/dL very-severe threshold).

Discussion: This family illustrates the remarkable phenotypic heterogeneity of FHTG. The proband has achieved good TG control despite significant cardiovascular comorbidities, while the youngest sibling presented with persistent severe hypertriglyceridemia complicated by pregnancy, necessitating substitution of fenofibrate with omega-3 fatty acids and lifestyle modification. The 33-year-old male sibling developed premature cardiovascular disease (microvascular dysfunction) and type 2 diabetes mellitus (T2DM) at a young age, underscoring the metabolic risks associated with persistent severe hypertriglyceridemia despite pharmacotherapy. Analysis of extended family lipid profiles — including LDL-cholesterol, HbA1c, HDL-cholesterol, and uric acid — further reveals the spectrum of atherogenic dyslipidemia within these kindred.

Conclusion: Cascade screening of first-degree relatives of patients with FHTG is critical, with particular urgency in Asian populations given distinct dietary patterns and genetic predispositions to hypertriglyceridemia. Management must be individualized, particularly in special populations such as pregnant women. This case series highlights the necessity of long-term, family-centered approaches to lipid management.

References

Bashir, M., Navti, O. B., Ahmed, B., & Konje, J. C. (2023). Hyperlipidaemia and severe hypertriglyceridaemia in pregnancy. The Obstetrician & Gynaecologist, 25(3), 196–209. https://doi.org/10.1111/tog.12887

Brahm, A. J., & Hegele, R. A. (2013). Hypertriglyceridemia. Nutrients, 5(3), 981–1001. https://doi.org/10.3390/nu5030981

Cruz-Bautista, I., Huerta-Chagoya, A., Moreno-Macías, H., et al. (2021). Familial hypertriglyceridemia: An entity with distinguishable features from other causes of hypertriglyceridemia. Lipids in Health and Disease, 20, Article 14. https://doi.org/10.1186/s12944-021-01436-6

Gaudet, D., Karwatowska-Prokopczuk, E., Baum, S. J., et al. (2020). Vupanorsen, an N-acetyl galactosamine–conjugated antisense drug to ANGPTL3 mRNA, lowers triglycerides. European Heart Journal, 41(40), 3936–3945. https://doi.org/10.1093/eurheartj/ehaa689

Goldberg, I. J., Eckel, R. H., & McPherson, R. (2011). Triglycerides and heart disease: Still a hypothesis? Arteriosclerosis, Thrombosis, and Vascular Biology, 31(8), 1716–1725. https://doi.org/10.1161/ATVBAHA.111.226100

Grundy, S. M., Stone, N. J., Bailey, A. L., et al. (2019). 2018 AHA/ACC/AACVPR/AAPA/ABC/ACPM/ADA/AGS/APhA/ASPC/NLA/PCNA guideline on the management of blood cholesterol. Journal of the American College of Cardiology, 73(24), e285–e350. https://doi.org/10.1016/j.jacc.2018.11.003

Hegele, R. A., Ginsberg, H. N., Chapman, M. J., et al. (2014). The polygenic nature of hypertriglyceridaemia: Implications for definition, diagnosis, and management. The Lancet Diabetes & Endocrinology, 2(8), 655–666. https://doi.org/10.1016/S2213-8587(13)70191-8

Jiang, C. Q., Liu, B., Cheung, B. M. Y., et al. (2010). A single nucleotide polymorphism in APOA5 determines triglyceride levels in Hong Kong and Guangzhou Chinese. European Journal of Human Genetics, 18(11), 1255–1260. https://doi.org/10.1038/ejhg.2010.93

Klarin, D., Damrauer, S. M., Cho, K., et al. (2018). Genetics of blood lipids among ~300,000 multi-ethnic participants of the Million Veteran Program. Nature Genetics, 50(11), 1514–1523. https://doi.org/10.1038/s41588-018-0222-9

Mach, F., Baigent, C., Catapano, A. L., et al., & ESC Scientific Document Group. (2020). 2019 ESC/EAS guidelines for the management of dyslipidaemias. European Heart Journal, 41(1), 111–188. https://doi.org/10.1093/eurheartj/ehz455

Miller, M., Stone, N. J., Ballantyne, C., et al. (2011). Triglycerides and cardiovascular disease: A scientific statement from the American Heart Association. Circulation, 123(20), 2292–2333. https://doi.org/10.1161/CIR.0b013e3182160726

Moulin, P., Dufour, R., Averna, M., et al. (2018). Identification and diagnosis of patients with familial chylomicronaemia syndrome (FCS): Expert panel recommendations and proposal of an ‘FCS score’. Atherosclerosis, 275, 265–272. https://doi.org/10.1016/j.atherosclerosis.2018.06.814

Rawla, P., Sunkara, T., Thandra, K. C., & Gaduputi, V. (2018). Hypertriglyceridemia-induced pancreatitis: Updated review of current treatment and preventive strategies. Clinical Journal of Gastroenterology, 11(6), 441–448. https://doi.org/10.1007/s12328-018-0881-1

Skulas-Ray, A. C., Wilson, P. W. F., Harris, W. S., et al. (2019). Omega-3 fatty acids for the management of hypertriglyceridemia: A science advisory from the American Heart Association. Circulation, 140(12), e673–e691. https://doi.org/10.1161/CIR.0000000000000709

Taskinen, M. R., Packard, C. J., & Borén, J. (2019). Emerging evidence that ApoC-III inhibitors provide novel options to reduce the residual CVD. Current Atherosclerosis Reports, 21(8), Article 27. https://doi.org/10.1007/s11883-019-0791-9

Published

2026-08-16

How to Cite

Prasada, A. A. N. A., & Sinardja, C. W. D. (2026). Phenotypic Heterogeneity of Familial Hypertriglyceridemia: A Case Series of a Mother and Three Siblings with Diverse Clinical Outcomes. Bali Medical and Wellness Journal, 3(2). https://doi.org/10.71341/bmwj.v3i2.60

Similar Articles

1 2 3 4 > >> 

You may also start an advanced similarity search for this article.