Evidence map›Paper›PMID 41557630›Full record

ArticlePloS one2026

Latent profile analysis of medication adherence in lower extremity deep venous thrombosis-cross-sectional study.

Ningning Hu, Xiaoyan Li, Feng Fu, Linzhou Xie, Jinfang Qi, Ping Wu, Yufeng Li, Ying-Lan Li

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Article in PloS one, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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5 · Who and what money

Authors and funding

8 authors.

Ningning HuSchool of Nursing, Xinjiang Medical University, Urumqi, China.
Xiaoyan LiSchool of Nursing, Xinjiang Medical University, Urumqi, China.
Feng FuSchool of Nursing, Xinjiang Medical University, Urumqi, China.
Linzhou XieSchool of Nursing, Xinjiang Medical University, Urumqi, China.
Jinfang QiThe Sixth Affiliated Hospital of Xinjiang Medical University, Urumqi, China.
Ping WuThe Sixth Affiliated Hospital of Xinjiang Medical University, Urumqi, China.
Yufeng LiThe Second Affiliated Hospital of Xinjiang Medical University, Urumqi, China.
Ying-Lan LiSchool of Nursing, Xinjiang Medical University, Urumqi, China.ORCID https://orcid.org/0009-0009-4964-445X

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

backgroundThe cornerstone of treating lower extremity deep venous thrombosis (LEDVT) lies in anticoagulation therapy to prevent thrombus progression and recurrence. However, patient adherence to medication is a critical factor influencing treatment efficacy. Traditional research often simplifies adherence into binary categories of "adherent" and "non-adherent," which fails to comprehensively reflect the complex behavioral patterns. Based on latent profile analysis (LPA), medication adherence in LEDVT patients can be categorized into distinct classes, enabling more precise identification of their characteristics. Therefore, exploring these latent classes and their influencing factors holds significant importance for optimizing intervention strategies and improving prognosis.

methodsA cross-sectional survey was used to study LEDVT. From March 14, 2024 to September 20, 2024, a random sampling method was used to recruit 469 patients with LEDVT from four grade-A tertiary hospitals in Urumqi, China. Participants completed questionnaires on general demographic information, the Medication Adherence Scale, the Perceived Health Competence Scale, the Herth Hope Index, the Patient Activation Measure, the Beliefs about Medicines Questionnaire-Specific. LPA was conducted to analyze the medication adherence characteristics of patients with LEDVT. Univariate analysis and multivariate logistic regression were used to identify the influencing factors of their latent profiles. Data analysis was performed using Mplus 8.3 and SPSS 25.0 software.

resultsLPA was employed to investigate medication adherence in LEDVT patients, revealing three distinct latent classes: the poorest adherence group (44.99%), the moderate adherence group (19.83%), and the good adherence group (35.18%). The logistic regression results demonstrated that, perceived health competence, hope, activation, beliefs about medication necessity, and concerns about medication were influential factors affecting the potential profile of medication adherence (all p < 0.05).

conclusionsLEDVT patients exhibit significant individual differences in medication adherence. Personalized intervention strategies can be designed based on different adherence classes to enhance medication adherence. Additionally, targeted interventions addressing perceived health competence, hope, positive affect, and medication beliefs can effectively improve adherence.

Indexed as

AnticoagulantsDrug MonitoringLower ExtremityMedication AdherenceVenous ThrombosisAdultAgedChinaCross-Sectional StudiesFemaleHumansMaleMiddle AgedSurveys and QuestionnairesAnticoagulants

Identifiers

PMID41557630
PMCPMC12818628

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.