General Information of Drug Transporter (DT)
DT ID DTD0194 Transporter Info
Gene Name SLC25A32
Transporter Name Mitochondrial folate transporter/carrier
Gene ID
81034
UniProt ID
Q9H2D1
Exogenous factors (drugs, dietary constituents, etc.) Modulation of This DT (EGM)

Chemical Compound

  DT Modulation1

Valproic Acid affects the expression of SLC25A32 mRNA [22]

Regulation Mechanism

Transcription Factor Info

  DT Modulation2

Valproic Acid results in decreased methylation of SLC25A32 gene [9]

Regulation Mechanism

Transcription Factor Info

  7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide results in decreased expression of SLC25A32 mRNA [14]

Regulation Mechanism

Transcription Factor Info

  Acrolein

           2 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Acrolein co-treated with methacrylaldehyde co-treated with alpha-pinene co-treated with Ozone results in decreased expression of SLC25A32 mRNA [15]

Regulation Mechanism

Transcription Factor Info

  DT Modulation2

Air Pollutants results in increased abundance of Acrolein co-treated with methacrylaldehyde co-treated with alpha-pinene co-treated with Ozone which results in decreased expression of SLC25A32 mRNA [15]

Regulation Mechanism

Transcription Factor Info

  alpha-pinene

           2 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Acrolein co-treated with methacrylaldehyde co-treated with alpha-pinene co-treated with Ozone results in decreased expression of SLC25A32 mRNA [15]

Regulation Mechanism

Transcription Factor Info

  DT Modulation2

Air Pollutants results in increased abundance of Acrolein co-treated with methacrylaldehyde co-treated with alpha-pinene co-treated with Ozone which results in decreased expression of SLC25A32 mRNA [15]

Regulation Mechanism

Transcription Factor Info

  beta-lapachone

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

beta-lapachone results in decreased expression of SLC25A32 mRNA [18]

Regulation Mechanism

Transcription Factor Info

  Cadmium Chloride

           2 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Cadmium Chloride results in decreased expression of SLC25A32 mRNA [19]

Regulation Mechanism

Transcription Factor Info

  DT Modulation2

Cadmium Chloride results in increased expression of SLC25A32 mRNA [20]

Regulation Mechanism

Transcription Factor Info

  Cisplatin

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Cisplatin co-treated with jinfukang results in decreased expression of SLC25A32 mRNA [12]

Regulation Mechanism

Transcription Factor Info

  Manganese

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

sodium arsenite results in increased abundance of Arsenic co-treated with manganese chloride results in increased abundance of Manganese results in increased expression of SLC25A32 mRNA [17]

Regulation Mechanism

Transcription Factor Info

  manganese chloride

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

sodium arsenite results in increased abundance of Arsenic co-treated with manganese chloride results in increased abundance of Manganese results in increased expression of SLC25A32 mRNA [17]

Regulation Mechanism

Transcription Factor Info

  methacrylaldehyde

           2 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Acrolein co-treated with methacrylaldehyde co-treated with alpha-pinene co-treated with Ozone results in decreased expression of SLC25A32 mRNA [15]

Regulation Mechanism

Transcription Factor Info

  DT Modulation2

Air Pollutants results in increased abundance of Acrolein co-treated with methacrylaldehyde co-treated with alpha-pinene co-treated with Ozone which results in decreased expression of SLC25A32 mRNA [15]

Regulation Mechanism

Transcription Factor Info

  Methyl Methanesulfonate

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Methyl Methanesulfonate results in decreased expression of SLC25A32 mRNA [11]

Regulation Mechanism

Transcription Factor Info

  Ozone

           3 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Acrolein co-treated with methacrylaldehyde co-treated with alpha-pinene co-treated with Ozone results in decreased expression of SLC25A32 mRNA [15]

Regulation Mechanism

Transcription Factor Info

  DT Modulation2

Air Pollutants results in increased abundance of Acrolein co-treated with methacrylaldehyde co-treated with alpha-pinene co-treated with Ozone which results in decreased expression of SLC25A32 mRNA [15]

Regulation Mechanism

Transcription Factor Info

  DT Modulation3

Volatile Organic Compounds co-treated with Ozone results in decreased expression of SLC25A32 mRNA [15]

Regulation Mechanism

Transcription Factor Info

  sodium arsenite

           2 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

sodium arsenite results in increased abundance of Arsenic co-treated with manganese chloride results in increased abundance of Manganese results in increased expression of SLC25A32 mRNA [17]

Regulation Mechanism

Transcription Factor Info

  DT Modulation2

sodium arsenite results in increased abundance of Arsenic which results in increased expression of SLC25A32 mRNA [17]

Regulation Mechanism

Transcription Factor Info

  Tetrachlorodibenzodioxin

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Tetrachlorodibenzodioxin affects the expression of SLC25A32 mRNA [10]

Regulation Mechanism

Transcription Factor Info

  Valsartan

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Valsartan inhibits the reaction AGT protein results in increased expression of SLC25A32 mRNA [23]

Regulation Mechanism

Transcription Factor Info

Mycotoxins

  Aflatoxin B1

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Aflatoxin B1 results in increased methylation of SLC25A32 gene [16]

Regulation Mechanism

Transcription Factor Info

Approved Drug

  Dexamethasone

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Dexamethasone increases the expression of SLC25A32 [1]

  Acetaminophen

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Acetaminophen inhibits the expression of SLC25A32 [2]

  Dronabinol

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Dronabinol inhibits the expression of SLC25A32 [3]

  Doxorubicin

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Doxorubicin inhibits the expression of SLC25A32 [4]

  Sunitinib

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Sunitinib increases the expression of SLC25A32 [5]

  Tretinoin

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Tretinoin inhibits the expression of SLC25A32 [6]

  Cyclosporine

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Cyclosporine increases the expression of SLC25A32 [7]

  Estradiol

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Estradiol increases the expression of SLC25A32 [8]

  Valproic Acid

           3 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Valproic Acid increases the expression of SLC25A32 [9]

Natural Product

  Tobacco Smoke Pollution

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Tobacco Smoke Pollution increases the expression of SLC25A32 [13]

  Resveratrol

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Plant Extracts co-treated with Resveratrol results in increased expression of SLC25A32 mRNA [21]

Regulation Mechanism

Transcription Factor Info

Traditional Medicine

  Jinfukang

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Jinfukang inhibits the expression of SLC25A32 [12]

Environmental toxicant

  Polychlorinated dibenzodioxin

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Polychlorinated dibenzodioxin affects the expression of SLC25A32 [10]

Carcinogen

  Ethyl Methanesulfonate

           1 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

Ethyl Methanesulfonate inhibits the expression of SLC25A32 [11]

  Arsenic

           2 DT Activity Modulations Related to This Exogenous Factor Click to Show/Hide the Full List

  DT Modulation1

sodium arsenite results in increased abundance of Arsenic co-treated with manganese chloride results in increased abundance of Manganese results in increased expression of SLC25A32 mRNA [17]

Regulation Mechanism

Transcription Factor Info

  DT Modulation2

sodium arsenite results in increased abundance of Arsenic which results in increased expression of SLC25A32 mRNA [17]

Regulation Mechanism

Transcription Factor Info
References
1 Identification of mechanisms of action of bisphenol a-induced human preadipocyte differentiation by transcriptional profiling. Obesity (Silver Spring). 2014 Nov;22(11):2333-43.
2 Increased mitochondrial ROS formation by acetaminophen in human hepatic cells is associated with gene expression changes suggesting disruption of the mitochondrial electron transport chain. Toxicol Lett. 2015 Apr 16;234(2):139-50.
3 THC exposure of human iPSC neurons impacts genes associated with neuropsychiatric disorders. Transl Psychiatry. 2018 Apr 25;8(1):89.
4 Bringing in vitro analysis closer to in vivo: Studying doxorubicin toxicity and associated mechanisms in 3D human microtissues with PBPK-based dose modelling. Toxicol Lett. 2018 Sep 15;294:184-192.
5 Cell-based two-dimensional morphological assessment system to predict cancer drug-induced cardiotoxicity using human induced pluripotent stem cell-derived cardiomyocytes. Toxicol Appl Pharmacol. 2019 Nov 15;383:114761.
6 Transcriptional and Metabolic Dissection of ATRA-Induced Granulocytic Differentiation in NB4 Acute Promyelocytic Leukemia Cells. Cells. 2020 Nov 5;9(11):2423.
7 Integrating multiple omics to unravel mechanisms of Cyclosporin A induced hepatotoxicity in vitro. Toxicol In Vitro. 2015 Apr;29(3):489-501.
8 17 beta-Estradiol Activates HSF1 via MAPK Signaling in ER alpha-Positive Breast Cancer Cells. Cancers (Basel). 2019 Oct 11;11(10):1533.
9 Integrative omics data analyses of repeated dose toxicity of valproic acid in vitro reveal new mechanisms of steatosis induction. Toxicology. 2018 Jan 15;393:160-170.
10 Cross-species comparisons of transcriptomic alterations in human and rat primary hepatocytes exposed to 2,3,7,8-tetrachlorodibenzo-p-dioxin. Toxicol Sci. 2012 May;127(1):199-215.
11 Characterization of formaldehyde's genotoxic mode of action by gene expression analysis in TK6 cells. Arch Toxicol. 2013 Nov;87(11):1999-2012.
12 Activation of AIFM2 enhances apoptosis of human lung cancer cells undergoing toxicological stress. Toxicol Lett. 2016 Sep 6;258:227-236.
13 Integration of transcriptome analysis with pathophysiological endpoints to evaluate cigarette smoke toxicity in an in vitro human airway tissue model. Arch Toxicol. 2021 May;95(5):1739-1761.
14 Early whole-genome transcriptional response induced by benzo[a]pyrene diol epoxide in a normal human cell line. Genomics. 2009;93(4):332-42.
15 Post-transcriptional air pollution oxidation to the cholesterol biosynthesis pathway promotes pulmonary stress phenotypes. Commun Biol. 2020;3(1):392.
16 Aflatoxin B1 induces persistent epigenomic effects in primary human hepatocytes associated with hepatocellular carcinoma. Toxicology. 2016 Mar 28;350-352:31-9.
17 Using transcriptomic signatures to elucidate individual and mixture effects of inorganic arsenic and manganese in human placental trophoblast HTR-8/SVneo cells. Toxicol Sci. 2025;203(2):216-226.
18 Lapachone induces ferroptosis of colorectal cancer cells via NCOA4-mediated ferritinophagy by activating JNK pathway. Chem Biol Interact. 2024;389:110866.
19 High-Throughput Transcriptomics of Nontumorigenic Breast Cells Exposed to Environmentally Relevant Chemicals. Environ Health Perspect. 2024;132(4):47002.
20 Long non-coding RNAs as novel expression signatures modulate DNA damage and repair in cadmium toxicology. Sci Rep. 2015;5:15293.
21 One-year supplementation with a grape extract containing resveratrol modulates inflammatory-related microRNAs and cytokines expression in peripheral blood mononuclear cells of type 2 diabetes and hypertensive patients with coronary artery disease. Pharmacol Res. 2013;72:69-82.
22 Gene Expression Regulation and Pathway Analysis After Valproic Acid and Carbamazepine Exposure in a Human Embryonic Stem Cell-Based Neurodevelopmental Toxicity Assay. Toxicol Sci. 2015 Aug;146(2):311-20.
23 High ambient glucose augments angiotensin II-induced proinflammatory gene mRNA expression in human mesangial cells: effects of valsartan and simvastatin. Am J Nephrol. 2009;30(2):99-111.

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