139 research outputs found
Is It Possible to Reverse the Storage-Induced Lesion of Red Blood Cells?
Cold-storage of packed red blood cells (PRBCs) in the blood bank is reportedly associated with alteration in a wide range of RBC features, which change cell storage each on its own timescale. Thus, some of the changes take place at an early stage of storage (during the first 7 days), while others occur later. We still do not have a clear understanding what happens to the damaged PRBC following their transfusion. We know that some portion (from a few to 10%) of transfused cells with a high degree of damage are removed from the bloodstream immediately or in the first hour(s) after the transfusion. The remaining cells partially restore their functionality and remain in the recipient’s blood for a longer time. Thus, the ability of transfused cells to recover is a significant factor in PRBC transfusion effectiveness. In the present review, we discuss publications that examined RBC lesions induced by the cold storage, aiming to offer a better understanding of the time frame in which these lesions occur, with particular emphasis on the question of their reversibility. We argue that transfused RBCs are capable (in a matter of a few hours) of restoring their pre-storage levels of ATP and 2,3-DPG, with subsequent restoration of cell functionality, especially of those properties having a more pronounced ATP-dependence. The extent of reversal is inversely proportional to the extent of damage, and some of the changes cannot be reversed
The Impact of Ca2+ on Intracellular Distribution of Hemoglobin in Human Erythrocytes
The membrane-bound hemoglobin (Hb) fraction impacts red blood cell (RBC) rheology and metabolism. Therefore, Hb–RBC membrane interactions are precisely controlled. For instance, the signaling function of membrane-bound deoxy-Hb and the structure of the docking sites in the cytosolic domain of the anion exchanger 1 (AE-1) protein are well documented; however, much less is known about the interaction of Hb variants with the erythrocyte’s membrane. Here, we identified factors other than O2 availability that control Hb abundance in the membrane-bound fraction and the possible variant-specific binding selectivity of Hb to the membrane. We show that depletion of extracellular Ca2+ by chelators, or its omission from the extracellular medium, leads to membrane-bound Hb release into the cytosol. The removal of extracellular Ca2+ further triggers the redistribution of HbA0 and HbA2 variants between the membrane and the cytosol in favor of membrane-bound HbA2. Both effects are reversible and are no longer observed upon reintroduction of Ca2+ into the extracellular medium. Fluctuations of cytosolic Ca2+ also impact the pre-membrane Hb pool, resulting in the massive transfer of Hb to the cellular cytosol. We hypothesize that AE-1 is the specific membrane target and discuss the physiological outcomes and possible clinical implications of the Ca2+ regulation of the intracellular Hb distribution
Solvent viscosity dependence for enzymatic reactions
A mechanism for relationship of solvent viscosity with reaction rate constant
at enzyme action is suggested. It is based on fluctuations of electric field in
enzyme active site produced by thermally equilibrium rocking (cranckshaft
motion) of the rigid plane (in which the dipole moment lies) of
a favourably located and oriented peptide group (or may be a few of them). Thus
the rocking of the plane leads to fluctuations of the electric field of the
dipole moment. These fluctuations can interact with the reaction coordinate
because the latter in its turn has transition dipole moment due to separation
of charges at movement of the reacting system along it. The rocking of the
plane of the peptide group is sensitive to the microviscosity of its
environment in protein interior and the latter is a function of the solvent
viscosity. Thus we obtain an additional factor of interrelationship for these
characteristics with the reaction rate constant. We argue that due to the
properties of the cranckshaft motion the frequency spectrum of the electric
field fluctuations has a sharp resonance peak at some frequency and the
corresponding Fourier mode can be approximated as oscillations. We employ a
known result from the theory of thermally activated escape with periodic
driving to obtain the reaction rate constant and argue that it yields reliable
description of the preexponent where the dependence on solvent viscosity
manifests itself. The suggested mechanism is shown to grasp the main feature of
this dependence known from the experiment and satisfactorily yields the upper
limit of the fractional index of a power in it.Comment: 36 LaTex pages, 9 Eps figures, final versio
Model for solvent viscosity effect on enzymatic reactions
Why reaction rate constants for enzymatic reactions are typically inversely
proportional to fractional power exponents of solvent viscosity remains to be
already a thirty years old puzzle. Available interpretations of the phenomenon
invoke to either a modification of 1. the conventional Kramers' theory or that
of 2. the Stokes law. We show that there is an alternative interpretation of
the phenomenon at which neither of these modifications is in fact
indispensable. We reconcile 1. and 2. with the experimentally observable
dependence. We assume that an enzyme solution in solvent with or without
cosolvent molecules is an ensemble of samples with different values of the
viscosity for the movement of the system along the reaction coordinate. We
assume that this viscosity consists of the contribution with the weight
from cosolvent molecules and that with the weight from protein matrix and
solvent molecules. We introduce heterogeneity in our system with the help of a
distribution over the weight . We verify the obtained solution of the
integral equation for the unknown function of the distribution by direct
substitution. All parameters of the model are related to experimentally
observable values. General formalism is exemplified by the analysis of
literature experimental data for oxygen escape from hemerythin.Comment: 16 LaTex pages, 5 eps figure
Effect of the haematocrit layer geometry on Plasmodium falciparum static thin-layer in vitro cultures
<p>Abstract</p> <p>Background</p> <p><it>In vitro </it>cultivation of <it>Plasmodium falciparum </it>is usually carried out through the continuous preservation of infected erythrocytes deposited in static thin layers of settled haematocrit. This technique, called the candle-jar method, was first achieved by Trager and Jensen in 1976 and has undergone slight modifications since then. However, no systematic studies concerning the geometry of the haematocrit layer have been carried out. In this work, a thorough investigation of the effects of the geometric culturing conditions on the parasite's development is presented.</p> <p>Methods</p> <p>Several experimental trials exploring different settings have been carried out, covering haematocrit layer depths that ranged from 6 mm to 3 mm and separation between the walls of the culturing device that ranged from 7.5 mm to 9 mm. The obtained results have been analysed and compared to different system-level models and to an Individual-Based Model.</p> <p>Conclusion</p> <p>In line with the results, a mechanism governing the propagation of the infection which limits it to the vicinity of the interface between the haematocrit layer and the culture medium is deduced, and the most appropriate configurations are proposed for further experimental assays.</p
A High Red Blood Cell Distribution Width Predicts Failure of Arteriovenous Fistula
In hemodialysis patients, a native arteriovenous fistula (AVF) is the preferred form of permanent vascular access. Despite recent improvements, vascular access dysfunction remains an important cause of morbidity in these patients. In this prospective observational cohort study, we evaluated potential risk factors for native AVF dysfunction. We included 68 patients with chronic renal disease stage 5 eligible for AVF construction at the Department of General and Vascular Surgery, Central Clinical Hospital Ministry of Internal Affairs, Warsaw, Poland. Patient characteristics and biochemical parameters associated with increased risk for AVF failure were identified using Cox proportional hazards models. Vessel biopsies were analyzed for inflammatory cells and potential associations with biochemical parameters. In multivariable analysis, independent predictors of AVF dysfunction were the number of white blood cells (hazard ratio [HR] 1.67; 95% confidence interval [CI] 1.24 to 2.25; p<0.001), monocyte number (HR 0.02; 95% CI 0.00 to 0.21; p = 0.001), and red blood cell distribution width (RDW) (HR 1.44; 95% CI 1.17 to 1.78; p<0.001). RDW was the only significant factor in receiver operating characteristic curve analysis (area under the curve 0.644; CI 0.51 to 0.76; p = 0.046). RDW>16.2% was associated with a significantly reduced AVF patency frequency 24 months after surgery. Immunohistochemical analysis revealed CD45-positive cells in the artery/vein of 39% of patients and CD68-positive cells in 37%. Patients with CD68-positive cells in the vessels had significantly higher white blood cell count. We conclude that RDW, a readily available laboratory value, is a novel prognostic marker for AVF failure. Further studies are warranted to establish the mechanistic link between high RDW and AVF failure
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