Novel type of red blood cell pyruvate kinase hyperactivity predicts a remote regulatory locus involved inPKLRgene expression

2014 ◽  
Vol 89 (4) ◽  
pp. 380-384 ◽  
Author(s):  
Brigitte Antoinette van Oirschot ◽  
Jerney Johanna Jeanette Maria Francois ◽  
Wouter Willem van Solinge ◽  
Annet Cornelia Wilhelmina van Wesel ◽  
Gert Rijksen ◽  
...  
Diabetes ◽  
1983 ◽  
Vol 32 (11) ◽  
pp. 1017-1022 ◽  
Author(s):  
A. Camagna ◽  
R. De Pirro ◽  
L. Tardella ◽  
L. Rossetti ◽  
R. Lauro ◽  
...  

Diabetes ◽  
1983 ◽  
Vol 32 (11) ◽  
pp. 1017-1022 ◽  
Author(s):  
A. Camagna ◽  
R. D. Pirro ◽  
L. Tardella ◽  
L. Rossetti ◽  
R. Lauro ◽  
...  

Blood ◽  
1997 ◽  
Vol 90 (12) ◽  
pp. 4987-4995 ◽  
Author(s):  
Wouter W. van Solinge ◽  
Rob J. Kraaijenhagen ◽  
Gert Rijksen ◽  
Richard van Wijk ◽  
Bjarne B. Stoffer ◽  
...  

Abstract We present a novel G1091 to A mutation in the human liver and red blood cell (RBC) pyruvate kinase (PK) gene causing severe hemolytic anemia. In two families, three children were severely PK-deficient compound heterozygotes exhibiting the G1091 to A mutation and a common G1529 to A mutation on the other allele. In one family, the mother, a G1091 to A heterozygote, later had a second baby with a new husband, also a G1091 to A carrier. The baby was homozygous for the G1091 to A mutation and died 6 weeks after birth from severe hemolysis. Both mutant alleles were expressed at the RNA level. The G1091 to A mutation results in the substitution of a conserved glycine by an aspartate in domain A of RBC PK, whereas the G1529 to A mutation leads to the substitution of a conserved arginine residue with glutamine in the C-domain. Molecular modelling of human RBC PK, based on the crystal structure of cat muscle PK, shows that both mutations are located outside the catalytic site at the interface of domains A and C. The mutations are likely to disrupt the critical conformation of the interface by introducing alternative salt bridges. In this way the Gly364 to Asp and Arg510 to Gln substitutions may cause PK deficiency by influencing the allosteric properties of the enzyme.


Blood ◽  
1998 ◽  
Vol 91 (6) ◽  
pp. 2169-2174
Author(s):  
Kumiko Tsujino ◽  
Hitoshi Kanno ◽  
Koji Hashimoto ◽  
Hisaichi Fujii ◽  
Tomoko Jippo ◽  
...  

The Pk-1slc gene encodes a mutant red blood cell (RBC) type pyruvate kinase (PK), and adult CBA-Pk-1slc/Pk-1slc mice show a severe nonspherocytic hemolytic anemia. However, the number of RBCs and the proportion of reticulocytes were comparable between neonatal CBA-Pk-1slc/Pk-1slc mice and control -+/+ mice. Since the age-dependent increase of RBCs was much greater in CBA-+/+ mice than in CBA-Pk-1slc/Pk-1slc mice, significant anemia was observed in the latter mice on day 14 after birth. The increase of RBCs in CBA-+/+ mice was due to the prolongation of their survival time. The half life of RBCs increased in CBA-+/+ mice with ages, but it decreased in CBA-Pk-1slc/Pk-1slc mice. The relatively longer half life of RBCs in neonatal CBA-Pk-1slc/Pk-1slc mice appeared to be due to the delayed switching from M2-type PK that are expressed by undifferentiated erythroid precursor cells to RBC-type PK that are expressed by mature RBCs.


Blood ◽  
2019 ◽  
Vol 134 (Supplement_1) ◽  
pp. 3506-3506
Author(s):  
Minke A.E. Rab ◽  
Brigitte A. van Oirschot ◽  
Stephanie van Straaten ◽  
Bart J. Biemond ◽  
Jennifer Bos ◽  
...  

Background: Reactive oxygen species (ROS) play an important role in the complex and multifactorial pathophysiology of hereditary hemolytic anemia like sickle cell disease (SCD), β-thalassemia and hereditary xerocytosis (HX). Increased intracellular levels of oxidative stress disrupt normal cell functioning and may contribute to premature red blood cell (RBC) clearance from the circulation. Pyruvate kinase (PK) is a key regulatory enzyme of glycolysis, the cell's main source of energy. Because PK is very sensitive to redox balance we hypothesized that increased levels of oxidative stress in SCD, β-thalassemia and HX impairs proper enzyme function, thereby compromizing RBC energy metabolism. This may contribute to disease pathophysiology. Aims: To investigate if secondary deficiency of PK is common in SCD, thalassemia, and HX, and to investigate if PK in these disorders is able to respond to treatment with the allosteric PK activator AG-348 (mitapivat). Methods: Enzymatic activities of red cell PK and hexokinase (HK) were measured together with PK-thermostability in order to assess relative PK activity and enzyme stability. Purified RBCs were incubated with AG-348 (3.33μM) for 24 hours after which PK activity and ATP response was measured. RBCs of SCD patients were also analyzed with the oxygenscan, a newly developed method that characterizes individual sickling behavior by oxygen gradient ektacytometry (Rab et al, Am J Hematol, 2019). Individual tendency to sickle is reflected by Point-of-Sickling (PoS) that indicates the specific pO2 at which RBCs start to sickle during deoxygenation under shear stress. Results: Thirty-eight patients and 21 healthy controls (HC) were included. The patient cohort consisted of patients homozygous for HbS (HbSS, n=26), patients compound heterozygous for HbS and HbC (HbSC, n=4), β-thalassemia major (regularly transfused, n=3), and hereditary xerocytosis (n=5). Patients showed reticulocytosis and, in line with this, a concomitant increase in HK activity. In contrast however, relative PK activity was decreased significantly compared to HK in HbSS, β-thalassemia and HX patients, but not in HbSC patients (Figure 1A). PK thermostability was significantly decreased compared to healthy controls in HbSS patients and patients with HX (Figure 1B). In HbSC and β-thalassemia patients, PK-thermostability was comparable to HC. PK thermostability strongly correlated with absolute reticulocyte count (ARC), indicating that patients displaying the highest degree of PK instability had the highest reticulocyte count (Figure 1C). This suggests that in general, a higher degree of PK instability is associated with more severe anemia due to a high hemolytic rate. In SCD patients, PK-thermostability inversely correlated with PoS, indicating that decreased PK stability is associated with sickling at higher pO2 (r=-0.646, p<0.001, Figure 1F). When purified RBCs were incubated with 3.33μM of the allosteric PK-activator AG-348, an increase in PK activity was seen in all patients and HCs, with a mean increase of 122% in HbSS (range 111-139%, n=6), 137% in β-thalassemia (n=1), 163% in HX (range 152-174%, n=2) and 143% in HC (range 113-173%, n=9, Figure 1E). Accordingly, ATP-levels increased in all patients and HCs, with a mean increase of 133% in HbSS (range 125-141%, n=5), 144% patient with β-thalassemia (n=1), 121% in HX (range 112-129, n=3), and 132% in HCs (range 101-149%, n=9, Figure 1E). Conclusion: PK enzyme activity and stability is compromised in patients with various forms of hereditary hemolytic anemia. This implies that PK stability and, hence, compromised red cell metabolism could contribute to the complex pathophysiology of these diseases. In SCD patients, reduced PK-thermostability is associated with higher PoS, which we previously have shown to be associated with more severe disease (Rab et al, Am J Hematol, 2019, ASH 2019 abstract ID128870). This is confirmed by the correlation of decreased PK-thermostability with increased reticulocyte count as presented in this study. Current studies are in progress to further substantiate the underlying mechanism(s) involved, and to investigate whether AG-348 may ameliorate clinical features such as hemolysis, sickling tendency and iron overload. Disclosures Rab: RR Mechatronics: Research Funding. Bos:RR Mechatronics: Research Funding. Kosinski:Agios Pharmaceuticals, Inc: Employment, Other: Stakeholder. Kung:Agios Pharmaceuticals, Inc: Employment, Other: Stakeholder. van Beers:Agios Pharmaceuticals, Inc.: Membership on an entity's Board of Directors or advisory committees, Research Funding; Novartis: Consultancy, Research Funding; Pfizer: Research Funding; RR Mechatronics: Research Funding. van Wijk:Agios Pharmaceuticals: Consultancy, Research Funding; RR Mechatronics: Research Funding.


2000 ◽  
Vol 26 (6) ◽  
pp. 689-690 ◽  
Author(s):  
VS Tanphaichitr ◽  
V Suvatte ◽  
S Issaragrisil ◽  
C Mahasandana ◽  
G Veerakul ◽  
...  

2009 ◽  
Vol 134 (4) ◽  
pp. 351-361 ◽  
Author(s):  
Joseph F. Hoffman ◽  
Alicia Dodson ◽  
Fulgencio Proverbio

Previous evidence established that a sequestered form of adenosine triphosphate (ATP pools) resides in the membrane/cytoskeletal complex of red cell porous ghosts. Here, we further characterize the roles these ATP pools can perform in the operation of the membrane's Na+ and Ca2+ pumps. The formation of the Na+- and Ca2+-dependent phosphointermediates of both types of pumps (ENa-P and ECa-P) that conventionally can be labeled with trace amounts of [γ-3P]ATP cannot occur when the pools contain unlabeled ATP, presumably because of dilution of the [γ-3P]ATP in the pool. Running the pumps forward with either Na+ or Ca2+ removes pool ATP and allows the normal formation of labeled ENa-P or ECa-P, indicating that both types of pumps can share the same pools of ATP. We also show that the halftime for loading the pools with bulk ATP is 10–15 minutes. We observed that when unlabeled “caged ATP” is entrapped in the membrane pools, it is inactive until nascent ATP is photoreleased, thereby blocking the labeled formation of ENa-P. We also demonstrate that ATP generated by the membrane-bound pyruvate kinase fills the membrane pools. Other results show that pool ATP alone, like bulk ATP, can promote the binding of ouabain to the membrane. In addition, we found that pool ATP alone functions together with bulk Na+ (without Mg2+) to release prebound ouabain. Curiously, ouabain was found to block bulk ATP from entering the pools. Finally, we show, with red cell inside-outside vesicles, that pool ATP alone supports the uptake of 45Ca by the Ca2+ pump, analogous to the Na+ pump uptake of 22Na in this circumstance. Although the membrane locus of the ATP pools within the membrane/cytoskeletal complex is unknown, it appears that pool ATP functions as the proximate energy source for the Na+ and Ca2+ pumps.


Blood ◽  
1997 ◽  
Vol 90 (12) ◽  
pp. 4987-4995 ◽  
Author(s):  
Wouter W. van Solinge ◽  
Rob J. Kraaijenhagen ◽  
Gert Rijksen ◽  
Richard van Wijk ◽  
Bjarne B. Stoffer ◽  
...  

We present a novel G1091 to A mutation in the human liver and red blood cell (RBC) pyruvate kinase (PK) gene causing severe hemolytic anemia. In two families, three children were severely PK-deficient compound heterozygotes exhibiting the G1091 to A mutation and a common G1529 to A mutation on the other allele. In one family, the mother, a G1091 to A heterozygote, later had a second baby with a new husband, also a G1091 to A carrier. The baby was homozygous for the G1091 to A mutation and died 6 weeks after birth from severe hemolysis. Both mutant alleles were expressed at the RNA level. The G1091 to A mutation results in the substitution of a conserved glycine by an aspartate in domain A of RBC PK, whereas the G1529 to A mutation leads to the substitution of a conserved arginine residue with glutamine in the C-domain. Molecular modelling of human RBC PK, based on the crystal structure of cat muscle PK, shows that both mutations are located outside the catalytic site at the interface of domains A and C. The mutations are likely to disrupt the critical conformation of the interface by introducing alternative salt bridges. In this way the Gly364 to Asp and Arg510 to Gln substitutions may cause PK deficiency by influencing the allosteric properties of the enzyme.


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