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Application of the AI Platform iLN Based on DeepSeek in the Teaching of Lupus Nephritis

15. juli 2026 opdateret af: Wang Ju'an, Nanjing University

Aim:

To evaluate the application effect of the teaching platform iLN in the teaching of lupus nephritis, aiming to provide practical experience and evidence-based support for the implementation of generative AI technology in professional medical education.

Method:

Based on the DeepSeek large language model, the investigators developed "iLN" - an interactive teaching platform for lupus nephritis. This platform integrates the latest authoritative textbooks, clinical guidelines, pathological atlases, and real clinical cases, and includes seven core modules, such as "case interaction", "knowledge teaching", and "AI question answering". The investigators conducted a randomized controlled trial (RCT) on 50 fourth-year undergraduate students from Nanjing University School of Medicine to evaluate the effectiveness of the iLN platform compared to traditional teaching methods. The teaching effect was evaluated through objective test scores and questionnaires about student satisfaction and platform usability.

Studieoversigt

Status

Ikke rekrutterer endnu

Betingelser

Detaljeret beskrivelse

Artificial Intelligence (AI) technology is reshaping the landscape of medical education with unprecedented depth and breadth. From early rule-based teaching expert systems to the current generation of Generative AI (GAI) systems like ChatGPT and DeepSeek, the continuous evolution of technology has not only greatly enriched teaching methods but also fundamentally changed the ways knowledge is acquired, disseminated, and evaluated. Internationally, Generative AI (GAI) has been widely applied in creating virtual cases, constructing clinical simulation scenarios, assisting medical writing, and providing personalized learning plans for medical students. However, there are almost no dedicated large language model (GAI) teaching applications specifically for lupus nephritis (LN) worldwide. As the most common severe organ complication of systemic lupus erythematosus (SLE), LN affects approximately 50% to 70% of SLE patients with kidney involvement. Its diagnosis and treatment involve multiple complex processes, including the identification of clinical manifestations, the interpretation of immune markers, the assessment of renal pathological types, the quantification of disease activity, and the formulation of personalized treatment plans. All of these place extremely high demands on the knowledge integration and clinical reasoning skills of medical students. The traditional LN teaching model mainly relies on theoretical classroom lectures and is supplemented by static pathological image presentations. Some scholars have introduced problem-based learning (PBL) teaching models and integrated ideological and political education, but there are still significant deficiencies: (1) Knowledge update lag - In the field of LN, new diagnostic standards (such as the 2019 EULAR/ACR systemic lupus erythematosus classification criteria), new pathological classifications (such as the 2018 ISN/RPS revised version), and new drug treatment regimens (such as belimumab) are constantly emerging, while the textbook revision cycle is relatively long, making it difficult for students to obtain the latest knowledge in a timely manner; (2) Lack of personalized teaching - Facing students with varying levels of basic knowledge, teachers find it difficult to meet the needs of different learning paces; students with weak foundations have difficulty understanding complex pathological mechanisms, while those with solid foundations may find the content too simplistic; (3) Insufficient clinical reasoning training - Traditional classrooms lack real clinical scenario simulations, and students listen passively rather than actively exploring, making it difficult for them to establish a complete clinical reasoning chain from "symptoms - signs - laboratory tests - pathology - diagnosis - treatment". In this context, building a GAI-assisted teaching platform specifically designed for LN teaching, fully leveraging the personalized interaction, dynamic content generation, and intelligent assessment capabilities of AI, is of great significance for teaching reform and innovation.

In this study, the investigators constructed an iLN interactive teaching platform for lupus nephritis based on the DeepSeek large language model and by integrating the latest authoritative textbooks, guidelines, and clinical pathology materials. Through a randomized controlled teaching trial, the investigators systematically evaluated the application effect of this platform in LN teaching, aiming to provide practical experience and evidence-based support for the implementation of GAI technology in specialized medical education.

Undersøgelsestype

Interventionel

Tilmelding (Anslået)

50

Fase

  • Ikke anvendelig

Kontakter og lokationer

Dette afsnit indeholder kontaktoplysninger for dem, der udfører undersøgelsen, og oplysninger om, hvor denne undersøgelse udføres.

Studiekontakt

  • Navn: Hao Bao, Doctor.
  • Telefonnummer: 86-15062213937
  • E-mail: bhao@nju.edu.cn

Studiesteder

    • Jiangsu
      • Nanjing, Jiangsu, Kina, 210016
        • Nanjing university

Deltagelseskriterier

Forskere leder efter personer, der passer til en bestemt beskrivelse, kaldet berettigelseskriterier. Nogle eksempler på disse kriterier er en persons generelle helbredstilstand eller tidligere behandlinger.

Berettigelseskriterier

Aldre berettiget til at studere

  • Voksen
  • Ældre voksen

Tager imod sunde frivillige

Ingen

Beskrivelse

Inclusion Criteria:

  • As a student majoring in clinical medicine
  • Volunteering to participate in the study

Exclusion Criteria:

  • Inability to understand, read, or communicate in Chinese
  • Failure to participate in any stage of the study (e.g. in-class education session, or post-test)
  • Requesting withdrawal from the study

Studieplan

Dette afsnit indeholder detaljer om studieplanen, herunder hvordan undersøgelsen er designet, og hvad undersøgelsen måler.

Hvordan er undersøgelsen tilrettelagt?

Design detaljer

  • Primært formål: Andet
  • Tildeling: Randomiseret
  • Interventionel model: Parallel tildeling
  • Maskning: Ingen (Åben etiket)

Våben og indgreb

Deltagergruppe / Arm
Intervention / Behandling
Eksperimentel: GAI-assisted teaching group
GAI-assisted teaching group: Students used various platform modules for self-directed learning under the instructor's guidance: (1) In the "Case Interaction" module, students interacted with three virtual cases by inputting natural language questions (e.g., "Does the patient have edema?", "What is the patient's proteinuria level?", "What are the light microscopy results of the renal biopsy?"). The platform automatically determines the question type and provides the corresponding information, while the visualized patient model on the right side simultaneously highlights the affected systems already identified, and the case information acquisition progress bar is updated dynamically; (2) When students encounter difficulties, they can invoke DeepSeek in real time for immediate answers through the "AI Q&A" module; (3) After completing case interactions, students proactively summarized the history characteristics, with the instructor providing supplementary input; (4) The instructor guided
An iLN interactive teaching platform for lupus nephritis based on the DeepSeek large language model and by integrating the latest authoritative textbooks, guidelines, and clinical pathology materials.
Andet: Traditional teaching group
Traditional teaching group: Adopted the traditional PowerPoint (PPT) lecture mode. The instructor used uniformly prepared PPT courseware to sequentially lecture on the SLE overview, LN clinical manifestations, laboratory tests, pathological classification, diagnostic criteria, treatment plans, and prognosis evaluation. The courseware included static pathological and clinical manifestation images.
Adopted the traditional PowerPoint (PPT) lecture mode. The instructor used uniformly prepared PPT courseware to sequentially lecture on the SLE overview, LN clinical manifestations, laboratory tests, pathological classification, diagnostic criteria, treatment plans, and prognosis evaluation. The courseware included static pathological and clinical manifestation images.

Hvad måler undersøgelsen?

Primære resultatmål

Resultatmål
Foranstaltningsbeskrivelse
Tidsramme
Objective Test Scores
Tidsramme: On the day of the end of the teaching session within 30 minutes after teaching session
Unified in-class objective test (20 multiple-choice questions, 5 points each, 100 points total),the higher the score, the better the performance.
On the day of the end of the teaching session within 30 minutes after teaching session

Sekundære resultatmål

Resultatmål
Foranstaltningsbeskrivelse
Tidsramme
Questionnaire Survey
Tidsramme: On the day of the end of the teaching session within 60 minutes after teaching session.
Students in the GAI group filled out the questionnaire on the iLN platform, including overall satisfaction (satisfied/dissatisfied), and gave scores (from 1 to 5) on 12 dimensions such as the platform's interest, teaching novelty, content clarity, interface design, and learning effect improvement. They also submitted open-ended suggestions for improvement.
On the day of the end of the teaching session within 60 minutes after teaching session.

Samarbejdspartnere og efterforskere

Det er her, du vil finde personer og organisationer, der er involveret i denne undersøgelse.

Publikationer og nyttige links

Den person, der er ansvarlig for at indtaste oplysninger om undersøgelsen, leverer frivilligt disse publikationer. Disse kan handle om alt relateret til undersøgelsen.

Datoer for undersøgelser

Disse datoer sporer fremskridtene for indsendelser af undersøgelsesrekord og resumeresultater til ClinicalTrials.gov. Studieregistreringer og rapporterede resultater gennemgås af National Library of Medicine (NLM) for at sikre, at de opfylder specifikke kvalitetskontrolstandarder, før de offentliggøres på den offentlige hjemmeside.

Studer store datoer

Studiestart (Anslået)

1. juli 2026

Primær færdiggørelse (Anslået)

31. december 2026

Studieafslutning (Anslået)

31. december 2026

Datoer for studieregistrering

Først indsendt

30. juni 2026

Først indsendt, der opfyldte QC-kriterier

15. juli 2026

Først opslået (Faktiske)

16. juli 2026

Opdateringer af undersøgelsesjournaler

Sidste opdatering sendt (Faktiske)

16. juli 2026

Sidste opdatering indsendt, der opfyldte kvalitetskontrolkriterier

15. juli 2026

Sidst verificeret

1. juli 2026

Mere information

Begreber relateret til denne undersøgelse

Plan for individuelle deltagerdata (IPD)

Planlægger du at dele individuelle deltagerdata (IPD)?

INGEN

IPD-planbeskrivelse

Individual participant data will not be shared

Lægemiddel- og udstyrsoplysninger, undersøgelsesdokumenter

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Disse oplysninger blev hentet direkte fra webstedet clinicaltrials.gov uden ændringer. Hvis du har nogen anmodninger om at ændre, fjerne eller opdatere dine undersøgelsesoplysninger, bedes du kontakte register@clinicaltrials.gov. Så snart en ændring er implementeret på clinicaltrials.gov, vil denne også blive opdateret automatisk på vores hjemmeside .

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