• Gut hepcidin decreases iron absorption by downregulating DMT1.

  • A food-grade Lactococcus lactis strain that produces hepcidin prevents iron overload in a mouse model of hemochromatosis.

Abstract

Hepcidin is the key hyposideremic hormone produced primarily by the liver. However, recent reports reveal extrahepatic functional sources of hepcidin, including the intestine, the site of dietary iron absorption. To determine whether intestinal hepcidin may play a role in plasma iron lowering, we generated transgenic mice overexpressing the peptide specifically in this tissue. At 1 month of age, transgenic mice exhibited severe iron deficiency along with decreased hematologic indices and a drastic suppression of liver hepcidin in response to hyposideremia. Mechanistically, we showed that intestinal hepcidin was produced in the intestine lumen, inducing a striking downregulation of divalent metal transporter 1 (DMT1) protein at the enterocyte. To confirm the capacity of hepcidin to decrease DMT1, we developed food-grade recombinant lactic acid bacteria (recLAB) genetically modified to deliver hepcidin directly into the intestinal lumen. These recLAB induced a rapid decrease of duodenal DMT1 and, most importantly, when daily orally administrated, protected against iron overload in a mouse model of hemochromatosis. Taken together, our data reveal a previously unrecognized role of intestinal hepcidin as a regulator of systemic iron homeostasis, acting on DMT1 on the apical side of enterocytes, with potential therapeutic relevance for hematologic or iron disorders.

1.
Ganz
T
.
Hepcidin--a regulator of intestinal iron absorption and iron recycling by macrophages
.
Best Pract Res Clin Haematol
.
2005
;
18
(
2
):
171
-
182
.
2.
Nemeth
E
,
Tuttle
MS
,
Powelson
J
, et al
.
Hepcidin regulates cellular iron efflux by binding to ferroportin and inducing its internalization
.
Science
.
2004
;
306
(
5704
):
2090
-
2093
.
3.
Yamaji
S
,
Sharp
P
,
Ramesh
B
,
Srai
SK
.
Inhibition of iron transport across human intestinal epithelial cells by hepcidin
.
Blood
.
2004
;
104
(
7
):
2178
-
2180
.
4.
Brasse-Lagnel
C
,
Karim
Z
,
Letteron
P
,
Bekri
S
,
Bado
A
,
Beaumont
C
.
Intestinal DMT1 cotransporter is down-regulated by hepcidin via proteasome internalization and degradation
.
Gastroenterology
.
2011
;
140
(
4
):
1261
-
1271.e1
.
5.
Mena
NP
,
Esparza
A
,
Tapia
V
,
Valdés
P
,
Núñez
MT
.
Hepcidin inhibits apical iron uptake in intestinal cells
.
Am J Physiol Gastrointest Liver Physiol
.
2008
;
294
(
1
):
G192
-
G198
.
6.
Chaston
T
,
Chung
B
,
Mascarenhas
M
, et al
.
Evidence for differential effects of hepcidin in macrophages and intestinal epithelial cells
.
Gut
.
2008
;
57
(
3
):
374
-
382
.
7.
Laftah
AH
,
Ramesh
B
,
Simpson
RJ
, et al
.
Effect of hepcidin on intestinal iron absorption in mice
.
Blood
.
2004
;
103
(
10
):
3940
-
3944
.
8.
Ward
DG
,
Roberts
K
,
Brookes
MJ
, et al
.
Increased hepcidin expression in colorectal carcinogenesis
.
World J Gastroenterol
.
2008
;
14
(
9
):
1339
-
1345
.
9.
Schwartz
AJ
,
Goyert
JW
,
Solanki
S
, et al
.
Hepcidin sequesters iron to sustain nucleotide metabolism and mitochondrial function in colorectal cancer epithelial cells
.
Nat Metab
.
2021
;
3
(
7
):
969
-
982
.
10.
Gotardo
ÉMF
,
de Almeida Ribeiro
G
,
Clemente
TRL
, et al
.
Hepcidin expression in colon during trinitrobenzene sulfonic acid-induced colitis in rats
.
World J Gastroenterol
.
2014
;
20
(
15
):
4345
-
4352
.
11.
Yang
H-T
,
Zou
SS
,
Zhai
LJ
, et al
.
Pathogen invasion changes the intestinal microbiota composition and induces innate immune responses in the zebrafish intestine
.
Fish Shellfish Immunol
.
2017
;
71
:
35
-
42
.
12.
Liu
X
,
Chang
X
,
Wu
H
,
Xiao
J
,
Gao
Y
,
Zhang
Y
.
Role of intestinal inflammation in predisposition of Edwardsiella tarda infection in zebrafish (Danio rerio)
.
Fish Shellfish Immunol
.
2014
;
41
(
2
):
271
-
278
.
13.
Fiorito
V
,
Geninatti Crich
S
,
Silengo
L
,
Altruda
F
,
Aime
S
,
Tolosano
E
.
Assessment of iron absorption in mice by ICP-MS measurements of 57Fe levels
.
Eur J Nutr
.
2012
;
51
(
7
):
783
-
789
.
14.
Okazaki
Y
.
Iron from the gut: the role of divalent metal transporter 1
.
J Clin Biochem Nutr
.
2024
;
74
(
1
):
1
-
8
.
15.
Benbouziane
B
,
Ribelles
P
,
Aubry
C
, et al
.
Development of a Stress-Inducible Controlled Expression (SICE) system in Lactococcus lactis for the production and delivery of therapeutic molecules at mucosal surfaces
.
J Biotechnol
.
2013
;
168
(
2
):
120
-
129
.
16.
Zumerle
S
,
Mathieu
JRR
,
Delga
S
, et al
.
Targeted disruption of hepcidin in the liver recapitulates the hemochromatotic phenotype
.
Blood
.
2014
;
123
(
23
):
3646
-
3650
.
17.
Yu
Y
,
Woloshun
RR
,
Lee
JK
, et al
.
In vivo silencing of intestinal DMT1 mitigates iron loading in β-thalassemia intermedia (Hbbth3/+) mice
.
Blood Adv
.
2024
;
8
(
22
):
5753
-
5765
.
18.
Ansharullah
BA
,
Sutanto
H
,
Romadhon
PZ
.
Thalassemia and iron overload cardiomyopathy: pathophysiological insights, clinical implications, and management strategies
.
Curr Probl Cardiol
.
2025
;
50
(
1
):
102911
.
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