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Language impairment in adults with end-stage liver disease: application of natural language processing towards patient-generated health records

  • Lindsay K. Dickerson
  • , Masoud Rouhizadeh
  • , Yelena Korotkaya
  • , Mary Grace Bowring
  • , Allan B. Massie
  • , Mara A. McAdams-Demarco
  • , Dorry L. Segev
  • , Alicia Cannon
  • , Anthony L. Guerrerio
  • , Po Hung Chen
  • , Benjamin N. Philosophe
  • , Douglas B. Mogul
  • Johns Hopkins University
  • Kennedy Krieger Institute

Research output: Contribution to journalArticlepeer-review

19 Scopus citations

Abstract

End-stage liver disease (ESLD) is associated with cognitive impairment ranging from subtle alterations in attention to overt hepatic encephalopathy that resolves after transplant. Natural language processing (NLP) may provide a useful method to assess cognitive status in this population. We identified 81 liver transplant recipients with ESLD (4/2013–2/2018) who sent at least one patient-to-provider electronic message pre-transplant and post-transplant, and matched them 1:1 to “healthy” controls—who had similar disease, but had not been evaluated for liver transplant—by age, gender, race/ethnicity, and liver disease. Messages written by patients pre-transplant and post-transplant and controls was compared across 19 NLP measures using paired Wilcoxon signed-rank tests. While there was no difference overall in word length, patients with Model for End-Stage Liver Disease Score (MELD) ≥ 30 (n = 31) had decreased word length in pre-transplant messages (3.95 [interquartile range (IQR) 3.79, 4.14]) compared to post-transplant (4.13 [3.96, 4.28], p = 0.01) and controls (4.2 [4.0, 4.4], p = 0.01); there was no difference between post-transplant and controls (p = 0.4). Patients with MELD ≥ 30 had fewer 6+ letter words in pre-transplant messages (19.5% [16.4, 25.9] compared to post-transplant (23.4% [20.0, 26.7] p = 0.02) and controls (25.0% [19.2, 29.4]; p = 0.01). Overall, patients had increased sentence length pre-transplant (12.0 [9.8, 13.7]) compared to post-transplant (11.0 [9.2, 13.3]; p = 0.046); the same was seen for MELD ≥ 30 (12.3 [9.8, 13.7] pre-transplant vs. 10.8 [9.6, 13.0] post-transplant; p = 0.050). Application of NLP to patient-generated messages identified language differences—longer sentences with shorter words—that resolved after transplant. NLP may provide opportunities to detect cognitive impairment in ESLD.

Original languageEnglish
Article number106
Journalnpj Digital Medicine
Volume2
Issue number1
DOIs
StatePublished - 1 Dec 2019
Externally publishedYes

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