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Updated: Oct 15, 2025

Intravascular Delivery of Biologics to the Rat Kidney
Published on: September 1, 2016
Indoleamine 2,3-dioxygenase-1, a Novel Therapeutic Target for Post-Vascular Injury Thrombosis in CKD
Joshua A Walker1,2, Sean Richards1, Stephen A Whelan3
1Renal Section, Department of Medicine, Boston University School of Medicine, Boston, Massachusetts.
Insights
Indoxyl sulfate (IS) in chronic kidney disease (CKD) increases thrombosis risk by upregulating indoleamine 2,3-dioxygenase-1 (IDO-1). Targeting IDO-1 may prevent thrombosis in CKD patients.
Area of Science:
- Nephrology
- Vascular Biology
- Thrombosis Research
Background:
- Chronic kidney disease (CKD) is a significant risk factor for thrombosis post-vascular procedures.
- Uremic solutes, including indoxyl sulfate (IS) and kynurenine (Kyn), promote thrombosis via tissue factor (TF).
- The enzymes involved in IS and Kyn biogenesis represent unexplored therapeutic targets.
Purpose of the Study:
- To investigate the role of indoleamine 2,3-dioxygenase-1 (IDO-1) in CKD-associated thrombosis.
- To explore IDO-1 as a potential antithrombotic target in CKD.
Main Methods:
- Examined IDO-1 expression in mouse and human vessels.
- Utilized IDO-1 knockout mice, IDO-1 inhibitors, CKD models, and carotid artery injury.
- Analyzed TF expression, thrombogenicity, and IDO-1 activity in CKD models and human cohorts.
Main Results:
- IDO-1 deficiency or inhibition reduced Kyn levels, TF expression, and thrombogenicity in CKD mice.
- IDO-1 inhibitors decreased TF expression in human vascular cells exposed to uremic serum.
- IS upregulated IDO-1 protein by inhibiting its degradation in vascular smooth muscle cells.
- Elevated blood IDO-1 activity correlated with subsequent thrombosis in CKD patients.
Conclusions:
- Indoxyl sulfate induces IDO-1, contributing to a prothrombotic state in CKD.
- IDO-1 is implicated as a key mediator of thrombosis in CKD.
- IDO-1 represents a promising antithrombotic target for patients with CKD.
Background:
CKD, characterized by retained uremic solutes, is a strong and independent risk factor for thrombosis after vascular procedures . Urem ic solutes such as indoxyl sulfate (IS) and kynurenine (Kyn) mediate prothrombotic effect through tissue factor (TF). IS and Kyn biogenesis depends on multiple enzymes, with therapeutic implications unexplored. We examined the role of indoleamine 2,3-dioxygenase-1 (IDO-1), a rate-limiting enzyme of kynurenine biogenesis, in CKD-associated thrombosis after vascular injury.
Methods:
IDO-1 expression in mice and human vessels was examined. IDO-1-/- mice, IDO-1 inhibitors, an adenine-induced CKD, and carotid artery injury models were used.
Results:
Both global IDO-1-/- CKD mice and IDO-1 inhibitor in wild-type CKD mice showed reduced blood Kyn levels, TF expression in their arteries, and thrombogenicity compared with respective controls. Several advanced IDO-1 inhibitors downregulated TF expression in primary human aortic vascular smooth muscle cells specifically in response to uremic serum. Further mechanistic probing of arteries from an IS-specific mouse model, and CKD mice, showed upregulation of IDO-1 protein, which was due to inhibition of its polyubiquitination and degradation by IS in vascular smooth muscle cells. In two cohorts of patients with advanced CKD, blood IDO-1 activity was significantly higher in sera of study participants who subsequently developed thrombosis after endovascular interventions or vascular surgery.
Conclusion:
Leveraging genetic and pharmacologic manipulation in experimental models and data from human studies implicate IS as an inducer of IDO-1 and a perpetuator of the thrombotic milieu and supports IDO-1 as an antithrombotic target in CKD.
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