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1 gulated gene which encodes an outer membrane heme receptor.
2 lization mutant, suggesting that HugA is the heme receptor.
3 e but share no similarity to known bacterial heme receptors.
4 s present in BhuR but not in other bacterial heme receptors.
5 e but share no homology with known bacterial heme receptors.
6 It was designated tdhA (for TonB-dependent heme receptor A) since it was related by sequence homolo
8 ropose PhuR and HasR represent non-redundant heme receptors, capable of accessing heme across a wide
9 cum involves induction of the outer membrane heme receptor gene hmuR and other genes within the heme
12 ediated by the outer membrane hemoglobin and heme receptor HmuR, as well as gingipain K (Kgp), a lysi
13 ve in heme-responsive production of the BhuR heme receptor; hurI in trans restored heme-inducible Bhu
19 ontains motifs which are common to bacterial heme receptors, including a consensus FRAP domain, an NP
20 Rd and also shared homology with five other heme receptors, including HxuC, HemR, HmuR, ChuA, and Sh
21 huR, which encodes a putative outer membrane heme receptor, mediates efficient acquisition of Fe from
22 s significant sequence similarity to HumA, a heme receptor of Moraxella catarrhalis, and contains con
26 ative feedback mechanism whereby the nuclear heme receptor Rev-erbalpha tightly controls the level of
28 ich is required for virulence in humans; the heme receptor TdhA; and an uncharacterized conserved hyp
29 eme utilization proteins: HugA, the putative heme receptor; TonB and ExbBD; HugB, the putative peripl
30 idence suggested that expression of the BhuR heme receptor was stimulated by the presence of heme und
31 reviously, three of six UPEC siderophore and heme receptors were identified as vaccine candidates by
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