Study2016Open access

Phase 1 Study of a Sulforaphane-Containing Broccoli Sprout Homogenate for Sickle Cell Disease

Doss JF, Jonassaint JC, Garrett ME, Ashley-Koch AE, Telen MJ, Chi JT

PloS one · 55 citations

Review labels

Mechanisms only

Neutral facts our review recorded about how this study was done. They describe method, never whether we like the result.

How it was studied

Design
Controlled clinical trial (classified by our AI screen)
Studied in
People
Main outcome
Mechanisms only
Intake measured by
Not stated

Who paid for it

Funding
Independent funding
Nonprofit
Doris Duke Charitable Foundation
Grants
Doris Duke Charitable Foundation (2011098)

Based on 1 listed funder(s) and full-text disclosure statement.

Publication

Published
2016-04-12 · PLoS One · vol. 11 · issue 4 · p. e0152895
Publisher
Public Library of Science
Cited
67 citations · more than 96% of similar papers · 4.9× the field average
Impact
Top 10% most cited in its field
References
47 works
Access
Open access (journal) · CC-BY
Research areas
Genomics, phytochemicals, and oxidative stress · Quinazolinone synthesis and applications · Synthesis and Characterization of Heterocyclic Compounds
Keywords
Sulforaphane, Glucoraphanin, Brassica, Chemistry, Food science, Biochemistry, Biology, Botany, Glucosinolate
MeSH
cells, cultured, humans, brassica, anemia, sickle cell, isothiocyanates, sulfoxides, rna, messenger, oxidative stress, adult, middle aged, female, male, nf-e2-related factor 2, heme oxygenase-1

6 authors

From US

  • Jennifer F. DossDuke University
  • Jude JonassaintDuke University
  • Melanie E. GarrettDuke University
  • Allison E. Ashley‐KochDuke University
  • Marilyn J. Telen · correspondingDuke University
  • Jen‐Tsan Chi · correspondingDuke University

Abstract

Sickle cell disease (SCD) is the most common inherited hemoglobinopathy worldwide. Our previous results indicate that the reduced oxidative stress capacity of sickle erythrocytes may be caused by decreased expression of NRF2 (Nuclear factor (erythroid-derived 2)-like 2), an oxidative stress regulator. We found that activation of NRF2 with sulforaphane (SFN) in erythroid progenitors significantly increased the expression of NRF2 targets HMOX1, NQO1, and HBG1 (subunit of fetal hemoglobin) in a dose-dependent manner. Therefore, we hypothesized that NRF2 activation with SFN may offer therapeutic benefits for SCD patients by restoring oxidative capacity and increasing fetal hemoglobin concentration. To test this hypothesis, we performed a Phase 1, open-label, dose-escalation study of SFN, contained in a broccoli sprout homogenate (BSH) that naturally contains SFN, in adults with SCD. The primary and secondary study endpoints were safety and physiological response to NRF2 activation, respectively. We found that BSH was well tolerated, and the few adverse events that occurred during the trial were not likely related to BSH consumption. We observed an increase in the mean relative whole blood mRNA levels for the NRF2 target HMOX1 (p = 0.02) on the last day of BSH treatment, compared to pre-treatment. We also observed a trend toward increased mean relative mRNA levels of the NRF2 target HBG1 (p = 0.10) from baseline to end of treatment, but without significant changes in HbF protein. We conclude that BSH, in the provided doses, is safe in stable SCD patients and may induce changes in gene expression levels. We therefore propose investigation of more potent NRF2 inducers, which may elicit more robust physiological changes and offer clinical benefits to SCD patients. Trial registration: ClinicalTrials.gov NCT01715480.

Abstract via Europe PMC. Copyright remains with the authors or publisher (CC BY).

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