• Circulating heme sheds EPCR from the renovascular endothelium, leading to sickle CKD.

  • Plasma EPCR levels were elevated in patients with SCD and CKD.

Abstract

Chronic kidney disease (CKD) is a major contributor to morbidity and mortality in sickle cell disease (SCD). Anemia, induced by chronic persistent hemolysis, is associated with the progressive deterioration of renal health, resulting in CKD. Moreover, patients with SCD experience acute kidney injury (AKI), a risk factor for CKD, often during vaso-occlusive crisis associated with acute intravascular hemolysis. However, the mechanisms of hemolysis-driven pathogenesis of the AKI-to-CKD transition in SCD remain elusive. Here, we investigated the role of increased renovascular rarefaction and the resulting substantial loss of the vascular endothelial protein C receptor (EPCR) in the progressive deterioration of renal function in transgenic SCD mice. Multiple hemolytic events raised circulating levels of soluble EPCR (sEPCR), indicating loss of EPCR from the cell surface. Using bone marrow transplantation and super-resolution ultrasound imaging, we demonstrated that SCD mice overexpressing EPCR were protective against heme-induced CKD development. In a cohort of patients with SCD, plasma sEPCR was significantly higher in individuals with CKD than in those without CKD. This study concludes that multiple hemolytic events may trigger CKD in SCD through the gradual loss of renovascular EPCR. Thus, the restoration of EPCR may be a therapeutic target, and plasma sEPCR can be developed as a prognostic marker for sickle CKD.

1.
Nath
KA
,
Hebbel
RP
.
Sickle cell disease: renal manifestations and mechanisms
.
Nat Rev Nephrol
.
2015
;
11
(
3
):
161
-
171
.
2.
Saraf
SL
,
Zhang
X
,
Kanias
T
, et al
.
Haemoglobinuria is associated with chronic kidney disease and its progression in patients with sickle cell anaemia
.
Br J Haematol
.
2014
;
164
(
5
):
729
-
739
.
3.
Niss
O
,
Lane
A
,
Asnani
MR
, et al
.
Progression of albuminuria in patients with sickle cell anemia: a multicenter, longitudinal study
.
Blood Adv
.
2020
;
4
(
7
):
1501
-
1511
.
4.
Derebail
VK
,
Zhou
Q
,
Ciccone
EJ
,
Cai
J
,
Ataga
KI
.
Rapid decline in estimated glomerular filtration rate is common in adults with sickle cell disease and associated with increased mortality
.
Br J Haematol
.
2019
;
186
(
6
):
900
-
907
.
5.
Gosmanova
EO
,
Zaidi
S
,
Wan
JY
,
Adams-Graves
PE
.
Prevalence and progression of chronic kidney disease in adult patients with sickle cell disease
.
J Investig Med
.
2014
;
62
(
5
):
804
-
807
.
6.
Kato
GJ
,
Hebbel
RP
,
Steinberg
MH
,
Gladwin
MT
.
Vasculopathy in sickle cell disease: biology, pathophysiology, genetics, translational medicine, and new research directions
.
Am J Hematol
.
2009
;
84
(
9
):
618
-
625
.
7.
Gbotosho
OT
,
Kapetanaki
MG
,
Kato
GJ
.
The worst things in life are free: the role of free heme in sickle cell disease
.
Front Immunol
.
2020
;
11
:
561917
.
8.
Merle
NS
,
Grunenwald
A
,
Rajaratnam
H
, et al
.
Intravascular hemolysis activates complement via cell-free heme and heme-loaded microvesicles
.
JCI Insight
.
2018
;
3
(
12
):
e96910
.
9.
Gladwin
MT
,
Ofori-Acquah
SF
.
Erythroid DAMPs drive inflammation in SCD
.
Blood
.
2014
;
123
(
24
):
3689
-
3690
.
10.
Ghosh
S
,
Tan
F
,
Ofori-Acquah
SF
.
Spatiotemporal dysfunction of the vascular permeability barrier in transgenic mice with sickle cell disease
.
Anemia
.
2012
;
2012
:
582018
.
11.
Ofori-Acquah
SF
,
Hazra
R
,
Orikogbo
OO
, et al
.
Hemopexin deficiency promotes acute kidney injury in sickle cell disease
.
Blood
.
2020
;
135
(
13
):
1044
-
1048
.
12.
Bissonnette
ML
,
Henriksen
KJ
,
Delaney
K
,
Stankus
N
,
Chang
A
.
Medullary microvascular thrombosis and injury in sickle hemoglobin C disease
.
J Am Soc Nephrol
.
2016
;
27
(
5
):
1300
-
1304
.
13.
Lusco
MA
,
Fogo
AB
,
Najafian
B
,
Alpers
CE
.
AJKD atlas of renal pathology: sickle cell nephropathy
.
Am J Kidney Dis
.
2016
;
68
(
1
):
e1
-
e3
.
14.
Kida
Y
,
Tchao
BN
,
Yamaguchi
I
.
Peritubular capillary rarefaction: a new therapeutic target in chronic kidney disease
.
Pediatr Nephrol
.
2014
;
29
(
3
):
333
-
342
.
15.
Chawla
LS
,
Kimmel
PL
.
Acute kidney injury and chronic kidney disease: an integrated clinical syndrome
.
Kidney Int
.
2012
;
82
(
5
):
516
-
524
.
16.
Ma
Y
,
Yang
X
,
Chatterjee
V
,
Meegan
JE
,
Beard
RS
,
Yuan
SY
.
Role of neutrophil extracellular traps and vesicles in regulating vascular endothelial permeability
.
Front Immunol
.
2019
;
10
:
1037
.
17.
Mohan Rao
LV
,
Esmon
CT
,
Pendurthi
UR
.
Endothelial cell protein C receptor: a multiliganded and multifunctional receptor
.
Blood
.
2014
;
124
(
10
):
1553
-
1562
.
18.
Stearns-Kurosawa
DJ
,
Kurosawa
S
,
Mollica
JS
,
Ferrell
GL
,
Esmon
CT
.
The endothelial cell protein C receptor augments protein C activation by the thrombin-thrombomodulin complex
.
Proc Natl Acad Sci U S A
.
1996
;
93
(
19
):
10212
-
10216
.
19.
Riewald
M
,
Petrovan
RJ
,
Donner
A
,
Mueller
BM
,
Ruf
W
.
Activation of endothelial cell protease activated receptor 1 by the protein C pathway
.
Science
.
2002
;
296
(
5574
):
1880
-
1882
.
20.
Mosnier
LO
,
Zlokovic
BV
,
Griffin
JH
.
The cytoprotective protein C pathway
.
Blood
.
2007
;
109
(
8
):
3161
-
3172
.
21.
Bouwens
EA
,
Stavenuiter
F
,
Mosnier
LO
.
Mechanisms of anticoagulant and cytoprotective actions of the protein C pathway
.
J Thromb Haemost
.
2013
;
11
(
suppl 1
):
242
-
253
.
22.
Sesin
CA
,
Yin
X
,
Esmon
CT
,
Buyon
JP
,
Clancy
RM
.
Shedding of endothelial protein C receptor contributes to vasculopathy and renal injury in lupus: in vivo and in vitro evidence
.
Kidney Int
.
2005
;
68
(
1
):
110
-
120
.
23.
Gandrille
S
.
Endothelial cell protein C receptor and the risk of venous thrombosis
.
Haematologica
.
2008
;
93
(
6
):
812
-
816
.
24.
Kurosawa
S
,
Stearns-Kurosawa
DJ
,
Carson
CW
,
D'Angelo
A
,
Della Valle
P
,
Esmon
CT
.
Plasma levels of endothelial cell protein C receptor are elevated in patients with sepsis and systemic lupus erythematosus: lack of correlation with thrombomodulin suggests involvement of different pathological processes
.
Blood
.
1998
;
91
(
2
):
725
-
727
.
25.
Lattenist
L
,
Ochodnický
P
,
Ahdi
M
, et al
.
Renal endothelial protein C receptor expression and shedding during diabetic nephropathy
.
J Thromb Haemost
.
2016
;
14
(
6
):
1171
-
1182
.
26.
Wu
LC
,
Sun
CW
,
Ryan
TM
,
Pawlik
KM
,
Ren
J
,
Townes
TM
.
Correction of sickle cell disease by homologous recombination in embryonic stem cells
.
Blood
.
2006
;
108
(
4
):
1183
-
1188
.
27.
Li
W
,
Zheng
X
,
Gu
J
, et al
.
Overexpressing endothelial cell protein C receptor alters the hemostatic balance and protects mice from endotoxin
.
J Thromb Haemost
.
2005
;
3
(
7
):
1351
-
1359
.
28.
Drawz
P
,
Ayyappan
S
,
Nouraie
M
, et al
.
Kidney disease among patients with sickle cell disease, hemoglobin SS and SC
.
Clin J Am Soc Nephrol
.
2016
;
11
(
2
):
207
-
215
.
29.
Schreiber
A
,
Shulhevich
Y
,
Geraci
S
, et al
.
Transcutaneous measurement of renal function in conscious mice
.
Am J Physiol Renal Physiol
.
2012
;
303
(
5
):
F783
-
F788
.
30.
Errico
C
,
Pierre
J
,
Pezet
S
, et al
.
Ultrafast ultrasound localization microscopy for deep super-resolution vascular imaging
.
Nature
.
2015
;
527
(
7579
):
499
-
502
.
31.
Søgaard
SB
,
Andersen
SB
,
Taghavi
I
, et al
.
Super-resolution ultrasound imaging provides quantification of the renal cortical and medullary vasculature in obese Zucker rats: a pilot study
.
Diagnostics (Basel)
.
2022
;
12
(
7
):
1626
.
32.
Chen
Q
,
Yu
J
,
Rush
BM
,
Stocker
SD
,
Tan
RJ
,
Kim
K
.
Ultrasound super-resolution imaging provides a noninvasive assessment of renal microvasculature changes during mouse acute kidney injury
.
Kidney Int
.
2020
;
98
(
2
):
355
-
365
.
33.
Ghosh
S
,
Ihunnah
CA
,
Hazra
R
, et al
.
Nonhematopoietic Nrf2 dominantly impedes adult progression of sickle cell anemia in mice
.
JCI Insight
.
2016
;
1
(
4
):
e81090
.
34.
Benoit
SW
,
Ciccia
EA
,
Devarajan
P
.
Cystatin C as a biomarker of chronic kidney disease: latest developments
.
Expert Rev Mol Diagn
.
2020
;
20
(
10
):
1019
-
1026
.
35.
Kasztan
M
,
Fox
BM
,
Lebensburger
JD
, et al
.
Hyperfiltration predicts long-term renal outcomes in humanized sickle cell mice
.
Blood Adv
.
2019
;
3
(
9
):
1460
-
1475
.
36.
Hayes
RJ
,
Beckford
M
,
Grandison
Y
,
Mason
K
,
Serjeant
BE
,
Serjeant
GR
.
The haematology of steady state homozygous sickle cell disease: frequency distributions, variation with age and sex, longitudinal observations
.
Br J Haematol
.
1985
;
59
(
2
):
369
-
382
.
37.
Moxon
CA
,
Wassmer
SC
,
Milner
DA
, et al
.
Loss of endothelial protein C receptors links coagulation and inflammation to parasite sequestration in cerebral malaria in African children
.
Blood
.
2013
;
122
(
5
):
842
-
851
.
38.
Qian
Q
,
Nath
KA
,
Wu
Y
,
Daoud
TM
,
Sethi
S
.
Hemolysis and acute kidney failure
.
Am J Kidney Dis
.
2010
;
56
(
4
):
780
-
784
.
39.
Bae
JS
,
Kim
IS
,
Rezaie
AR
.
Thrombin down-regulates the TGF-beta-mediated synthesis of collagen and fibronectin by human proximal tubule epithelial cells through the EPCR-dependent activation of PAR-1
.
J Cell Physiol
.
2010
;
225
(
1
):
233
-
239
.
40.
Sparkenbaugh
EM
,
Chen
C
,
Brzoska
T
, et al
.
Thrombin activation of PAR-1 contributes to microvascular stasis in mouse models of sickle cell disease
.
Blood
.
2020
;
135
(
20
):
1783
-
1787
.
41.
Levin
A
,
Stevens
PE
.
Summary of KDIGO 2012 CKD Guideline: behind the scenes, need for guidance, and a framework for moving forward
.
Kidney Int
.
2014
;
85
(
1
):
49
-
61
.
42.
Lebensburger
J
,
Johnson
SM
,
Askenazi
DJ
,
Rozario
NL
,
Howard
TH
,
Hilliard
LM
.
Protective role of hemoglobin and fetal hemoglobin in early kidney disease for children with sickle cell anemia
.
Am J Hematol
.
2011
;
86
(
5
):
430
-
432
.
43.
Day
TG
,
Drasar
ER
,
Fulford
T
,
Sharpe
CC
,
Thein
SL
.
Association between hemolysis and albuminuria in adults with sickle cell anemia
.
Haematologica
.
2012
;
97
(
2
):
201
-
205
.
44.
Gurkan
S
,
Scarponi
KJ
,
Hotchkiss
H
,
Savage
B
,
Drachtman
R
.
Lactate dehydrogenase as a predictor of kidney involvement in patients with sickle cell anemia
.
Pediatr Nephrol
.
2010
;
25
(
10
):
2123
-
2127
.
45.
Hamideh
D
,
Raj
V
,
Harrington
T
, et al
.
Albuminuria correlates with hemolysis and NAG and KIM-1 in patients with sickle cell anemia
.
Pediatr Nephrol
.
2014
;
29
(
10
):
1997
-
2003
.
46.
McClellan
AC
,
Luthi
JC
,
Lynch
JR
, et al
.
High one year mortality in adults with sickle cell disease and end-stage renal disease
.
Br J Haematol
.
2012
;
159
(
3
):
360
-
367
.
47.
Aban
I
,
Baddam
S
,
Hilliard
LM
,
Howard
TH
,
Feig
DI
,
Lebensburger
JD
.
Severe anemia early in life as a risk factor for sickle-cell kidney disease
.
Blood
.
2017
;
129
(
3
):
385
-
387
.
48.
Baddam
S
,
Aban
I
,
Hilliard
L
,
Howard
T
,
Askenazi
D
,
Lebensburger
JD
.
Acute kidney injury during a pediatric sickle cell vaso-occlusive pain crisis
.
Pediatr Nephrol
.
2017
;
32
(
8
):
1451
-
1456
.
49.
Lebensburger
JD
,
Palabindela
P
,
Howard
TH
,
Feig
DI
,
Aban
I
,
Askenazi
DJ
.
Prevalence of acute kidney injury during pediatric admissions for acute chest syndrome
.
Pediatr Nephrol
.
2016
;
31
(
8
):
1363
-
1368
.
50.
Ghosh
S
,
Adisa
OA
,
Chappa
P
, et al
.
Extracellular hemin crisis triggers acute chest syndrome in sickle mice
.
J Clin Invest
.
2013
;
123
(
11
):
4809
-
4820
.
51.
Wagener
FA
,
Eggert
A
,
Boerman
OC
, et al
.
Heme is a potent inducer of inflammation in mice and is counteracted by heme oxygenase
.
Blood
.
2001
;
98
(
6
):
1802
-
1811
.
52.
Qiu
Y
,
Ahn
B
,
Sakurai
Y
, et al
.
Microvasculature-on-a-chip for the long-term study of endothelial barrier dysfunction and microvascular obstruction in disease
.
Nat Biomed Eng
.
2018
;
2
:
453
-
463
.
53.
Singla
S
,
Sysol
JR
,
Dille
B
,
Jones
N
,
Chen
J
,
Machado
RF
.
Hemin causes lung microvascular endothelial barrier dysfunction by necroptotic cell death
.
Am J Respir Cell Mol Biol
.
2017
;
57
(
3
):
307
-
314
.
54.
Ehling
J
,
Bábíčková
J
,
Gremse
F
, et al
.
Quantitative micro-computed tomography imaging of vascular dysfunction in progressive kidney diseases
.
J Am Soc Nephrol
.
2016
;
27
(
2
):
520
-
532
.
55.
Bábíčková
J
,
Klinkhammer
BM
,
Buhl
EM
, et al
.
Regardless of etiology, progressive renal disease causes ultrastructural and functional alterations of peritubular capillaries
.
Kidney Int
.
2017
;
91
(
1
):
70
-
85
.
56.
Lindenmeyer
MT
,
Kretzler
M
,
Boucherot
A
, et al
.
Interstitial vascular rarefaction and reduced VEGF-A expression in human diabetic nephropathy
.
J Am Soc Nephrol
.
2007
;
18
(
6
):
1765
-
1776
.
57.
Mammen
C
,
Bissonnette
ML
,
Matsell
DG
.
Acute kidney injury in children with sickle cell disease-compounding a chronic problem
.
Pediatr Nephrol
.
2017
;
32
(
8
):
1287
-
1291
.
58.
Chawla
LS
,
Amdur
RL
,
Amodeo
S
,
Kimmel
PL
,
Palant
CE
.
The severity of acute kidney injury predicts progression to chronic kidney disease
.
Kidney Int
.
2011
;
79
(
12
):
1361
-
1369
.
59.
Coca
SG
,
Singanamala
S
,
Parikh
CR
.
Chronic kidney disease after acute kidney injury: a systematic review and meta-analysis
.
Kidney Int
.
2012
;
81
(
5
):
442
-
448
.
60.
Kramann
R
,
Tanaka
M
,
Humphreys
BD
.
Fluorescence microangiography for quantitative assessment of peritubular capillary changes after AKI in mice
.
J Am Soc Nephrol
.
2014
;
25
(
9
):
1924
-
1931
.
61.
Basile
DP
,
Donohoe
D
,
Roethe
K
,
Osborn
JL
.
Renal ischemic injury results in permanent damage to peritubular capillaries and influences long-term function
.
Am J Physiol Renal Physiol
.
2001
;
281
(
5
):
F887
-
F899
.
62.
Andersen
SB
,
Taghavi
I
,
Kjer
HM
, et al
.
Evaluation of 2D super-resolution ultrasound imaging of the rat renal vasculature using ex vivo micro-computed tomography
.
Sci Rep
.
2021
;
11
(
1
):
24335
.
63.
Scaldaferri
F
,
Sans
M
,
Vetrano
S
, et al
.
Crucial role of the protein C pathway in governing microvascular inflammation in inflammatory bowel disease
.
J Clin Invest
.
2007
;
117
(
7
):
1951
-
1960
.
64.
Xu
J
,
Qu
D
,
Esmon
NL
,
Esmon
CT
.
Metalloproteolytic release of endothelial cell protein C receptor
.
J Biol Chem
.
2000
;
275
(
8
):
6038
-
6044
.
65.
Gu
JM
,
Katsuura
Y
,
Ferrell
GL
,
Grammas
P
,
Esmon
CT
.
Endotoxin and thrombin elevate rodent endothelial cell protein C receptor mRNA levels and increase receptor shedding in vivo
.
Blood
.
2000
;
95
(
5
):
1687
-
1693
.
66.
Lattenist
L
,
Kers
J
,
Claessen
N
, et al
.
Renal and urinary levels of endothelial protein C receptor correlate with acute renal allograft rejection
.
PLoS One
.
2013
;
8
(
5
):
e64994
.
67.
Whelihan
MF
,
Lim
MY
,
Mooberry
MJ
, et al
.
Thrombin generation and cell-dependent hypercoagulability in sickle cell disease
.
J Thromb Haemost
.
2016
;
14
(
10
):
1941
-
1952
.
68.
Gavins
FN
,
Russell
J
,
Senchenkova
EL
, et al
.
Mechanisms of enhanced thrombus formation in cerebral microvessels of mice expressing hemoglobin-S
.
Blood
.
2011
;
117
(
15
):
4125
-
4133
.
69.
Schnog
JB
,
Mac Gillavry
MR
,
van Zanten
AP
, et al
.
Protein C and S and inflammation in sickle cell disease
.
Am J Hematol
.
2004
;
76
(
1
):
26
-
32
.
70.
Griffin
JH
,
Zlokovic
BV
,
Mosnier
LO
.
Activated protein C: biased for translation
.
Blood
.
2015
;
125
(
19
):
2898
-
2907
.
71.
Ramadas
N
,
Lowder
K
,
Dutton
J
, et al
.
Biased agonism of protease-activated receptor-1 regulates thromboinflammation in murine sickle cell disease
.
Blood Adv
.
2024
;
8
(
12
):
3272
-
3283
.
72.
Sinha
RK
,
Wang
Y
,
Zhao
Z
, et al
.
PAR1 biased signaling is required for activated protein C in vivo benefits in sepsis and stroke
.
Blood
.
2018
;
131
(
11
):
1163
-
1171
.
73.
Pendurthi
UR
,
Rao
LVM
.
Endothelial cell protein C receptor-dependent signaling
.
Curr Opin Hematol
.
2018
;
25
(
3
):
219
-
226
.
74.
Ruiz
MA
,
Shah
BN
,
Ren
G
, et al
.
Thrombomodulin and multiorgan failure in sickle cell anemia
.
Am J Hematol
.
2022
;
97
(
3
):
E102
-
E105
.
75.
Biswas
I
,
Giri
H
,
Panicker
SR
,
Rezaie
AR
.
Thrombomodulin switches signaling and protease-activated receptor 1 cleavage specificity of thrombin
.
Arterioscler Thromb Vasc Biol
.
2024
;
44
(
3
):
603
-
616
.
76.
Qu
D
,
Wang
Y
,
Esmon
NL
,
Esmon
CT
.
Regulated endothelial protein C receptor shedding is mediated by tumor necrosis factor-alpha converting enzyme/ADAM17
.
J Thromb Haemost
.
2007
;
5
(
2
):
395
-
402
.
77.
Hirvonen
E
,
Idanpaan-Heikkila
J
.
Cardiovascular death among women under 40 years of age using low-estrogen oral contraceptives and intrauterine devices in Finland from 1975 to 1984
.
Am J Obstet Gynecol
.
1990
;
163
(
1 Pt 2
):
281
-
284
.
78.
Ding
J
,
Yu
M
,
Jiang
J
, et al
.
Angiotensin II decreases endothelial nitric oxide synthase phosphorylation via AT(1)R Nox/ROS/PP2A pathway
.
Front Physiol
.
2020
;
11
:
566410
.
79.
Medina
P
,
Navarro
S
,
Bonet
E
, et al
.
Functional analysis of two haplotypes of the human endothelial protein C receptor gene
.
Arterioscler Thromb Vasc Biol
.
2014
;
34
(
3
):
684
-
690
.
80.
Saposnik
B
,
Lesteven
E
,
Lokajczyk
A
,
Esmon
CT
,
Aiach
M
,
Gandrille
S
.
Alternative mRNA is favored by the A3 haplotype of the EPCR gene PROCR and generates a novel soluble form of EPCR in plasma
.
Blood
.
2008
;
111
(
7
):
3442
-
3451
.
81.
Ireland
H
,
Konstantoulas
CJ
,
Cooper
JA
, et al
.
EPCR Ser219Gly: elevated sEPCR, prothrombin F1+2, risk for coronary heart disease, and increased sEPCR shedding in vitro
.
Atherosclerosis
.
2005
;
183
(
2
):
283
-
292
.
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