Iron-deficiency anemia results in transcriptional and metabolic remodeling in the heart toward a glycolytic phenotype

Iron deficiency is the most prevalent micronutrient disorder globally. When severe, iron deficiency leads to anemia, which can be deleterious to cardiac function. Given the central role of iron and oxygen in cardiac biology, multiple pathways are expected to be altered in iron-deficiency anemia, and...

Full description

Bibliographic Details
Main Authors: Chung, YJ, Swietach, P, Curtis, MK, Ball, V, Robbins, PA, Lakhal-Littleton, S
Format: Journal article
Language:English
Published: Frontiers Media 2021
_version_ 1797070682676264960
author Chung, YJ
Swietach, P
Curtis, MK
Ball, V
Robbins, PA
Lakhal-Littleton, S
author_facet Chung, YJ
Swietach, P
Curtis, MK
Ball, V
Robbins, PA
Lakhal-Littleton, S
author_sort Chung, YJ
collection OXFORD
description Iron deficiency is the most prevalent micronutrient disorder globally. When severe, iron deficiency leads to anemia, which can be deleterious to cardiac function. Given the central role of iron and oxygen in cardiac biology, multiple pathways are expected to be altered in iron-deficiency anemia, and identifying these requires an unbiased approach. To investigate these changes, gene expression and metabolism were studied in mice weaned onto an iron-deficient diet for 6 weeks. Whole-exome transcriptomics (RNAseq) identified over 1,500 differentially expressed genes (DEGs), of which 22% were upregulated and 78% were downregulated in the iron-deficient group, relative to control animals on an iron-adjusted diet. The major biological pathways affected were oxidative phosphorylation and pyruvate metabolism, as well as cardiac contraction and responses related to environmental stress. Cardiac metabolism was studied functionally using in vitro and in vivo methodologies. Spectrometric measurement of the activity of the four electron transport chain complexes in total cardiac lysates showed that the activities of Complexes I and IV were reduced in the hearts of iron-deficient animals. Pyruvate metabolism was assessed in vivo using hyperpolarized 13C magnetic resonance spectroscopy (MRS) of hyperpolarized pyruvate. Hearts from iron-deficient and anemic animals showed significantly decreased flux through pyruvate dehydrogenase and increased lactic acid production, consistent with tissue hypoxia and induction of genes coding for glycolytic enzymes and H+-monocarboxylate transport-4. Our results show that iron-deficiency anemia results in a metabolic remodeling toward a glycolytic, lactic acid-producing phenotype, a hallmark of hypoxia.
first_indexed 2024-03-06T22:42:26Z
format Journal article
id oxford-uuid:5c0d8748-db04-430a-993f-bf1cf1571f05
institution University of Oxford
language English
last_indexed 2024-03-06T22:42:26Z
publishDate 2021
publisher Frontiers Media
record_format dspace
spelling oxford-uuid:5c0d8748-db04-430a-993f-bf1cf1571f052022-03-26T17:25:47ZIron-deficiency anemia results in transcriptional and metabolic remodeling in the heart toward a glycolytic phenotypeJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:5c0d8748-db04-430a-993f-bf1cf1571f05EnglishSymplectic ElementsFrontiers Media2021Chung, YJSwietach, PCurtis, MKBall, VRobbins, PALakhal-Littleton, SIron deficiency is the most prevalent micronutrient disorder globally. When severe, iron deficiency leads to anemia, which can be deleterious to cardiac function. Given the central role of iron and oxygen in cardiac biology, multiple pathways are expected to be altered in iron-deficiency anemia, and identifying these requires an unbiased approach. To investigate these changes, gene expression and metabolism were studied in mice weaned onto an iron-deficient diet for 6 weeks. Whole-exome transcriptomics (RNAseq) identified over 1,500 differentially expressed genes (DEGs), of which 22% were upregulated and 78% were downregulated in the iron-deficient group, relative to control animals on an iron-adjusted diet. The major biological pathways affected were oxidative phosphorylation and pyruvate metabolism, as well as cardiac contraction and responses related to environmental stress. Cardiac metabolism was studied functionally using in vitro and in vivo methodologies. Spectrometric measurement of the activity of the four electron transport chain complexes in total cardiac lysates showed that the activities of Complexes I and IV were reduced in the hearts of iron-deficient animals. Pyruvate metabolism was assessed in vivo using hyperpolarized 13C magnetic resonance spectroscopy (MRS) of hyperpolarized pyruvate. Hearts from iron-deficient and anemic animals showed significantly decreased flux through pyruvate dehydrogenase and increased lactic acid production, consistent with tissue hypoxia and induction of genes coding for glycolytic enzymes and H+-monocarboxylate transport-4. Our results show that iron-deficiency anemia results in a metabolic remodeling toward a glycolytic, lactic acid-producing phenotype, a hallmark of hypoxia.
spellingShingle Chung, YJ
Swietach, P
Curtis, MK
Ball, V
Robbins, PA
Lakhal-Littleton, S
Iron-deficiency anemia results in transcriptional and metabolic remodeling in the heart toward a glycolytic phenotype
title Iron-deficiency anemia results in transcriptional and metabolic remodeling in the heart toward a glycolytic phenotype
title_full Iron-deficiency anemia results in transcriptional and metabolic remodeling in the heart toward a glycolytic phenotype
title_fullStr Iron-deficiency anemia results in transcriptional and metabolic remodeling in the heart toward a glycolytic phenotype
title_full_unstemmed Iron-deficiency anemia results in transcriptional and metabolic remodeling in the heart toward a glycolytic phenotype
title_short Iron-deficiency anemia results in transcriptional and metabolic remodeling in the heart toward a glycolytic phenotype
title_sort iron deficiency anemia results in transcriptional and metabolic remodeling in the heart toward a glycolytic phenotype
work_keys_str_mv AT chungyj irondeficiencyanemiaresultsintranscriptionalandmetabolicremodelinginthehearttowardaglycolyticphenotype
AT swietachp irondeficiencyanemiaresultsintranscriptionalandmetabolicremodelinginthehearttowardaglycolyticphenotype
AT curtismk irondeficiencyanemiaresultsintranscriptionalandmetabolicremodelinginthehearttowardaglycolyticphenotype
AT ballv irondeficiencyanemiaresultsintranscriptionalandmetabolicremodelinginthehearttowardaglycolyticphenotype
AT robbinspa irondeficiencyanemiaresultsintranscriptionalandmetabolicremodelinginthehearttowardaglycolyticphenotype
AT lakhallittletons irondeficiencyanemiaresultsintranscriptionalandmetabolicremodelinginthehearttowardaglycolyticphenotype