Tuesday, 28 February 2017

Artificial Blood

ABSTRACT:
Blood transfusion was once regarded as a safe and effective practice to save a patient’s life after massive blood loss. But the AIDS epidemic and concerns that donated blood could be contaminated with HIV and other infectious agents, such as the hepatitis C virus, shattered public confidence in blood transfusions. This only added to already existing supply problem that normal blood lasts for less than 42 days only. Artificial blood is a product made to act as a substitute for red blood cells. While true blood serves many different functions, artificial blood is designed for the sole purpose of transporting oxygen and carbon dioxide throughout the body. Depending on the type of artificial blood, it can be produced in different ways using synthetic production, chemical isolation, or recombinant biochemical technology. Various manufacturers have products in clinical trials; However, no truly safe and effective artificial blood product is currently marketed.

INTRODUCTION:
There has been a need for blood replacements for as long as patients have been bleeding to death because of a serious injury. According to medical folklore, the ancient Incas were responsible for the first recorded blood transfusions. No real progress was made in the development of a blood substitute until 1616. In the years to follow, medical practitioners tried numerous substances such as beer, urine, milk, plant resins, and sheep blood as a substitute for blood. The first successful human blood transfusions were done in 1667. Unfortunately, the practice was halted because patients who received subsequent transfusions died. William Amberson and colleagues at the State College of Medicine in Memphis showed that bovine haemolysates could transport oxygen in mammals , and later found that human haemolysates had the same potential when infused in patients . Since then, the development of transfusion medicine has received much of its impetus from the military—not surprising, given that haemorrhage is the leading cause of death on the battlefield.
IDEAL PROPERTIES:
In early stages it is clear that it was not neccessary to develop a substance that mimics all the functions of whole blood. But rather a temporary oxygen carrier to provide adequate oxygen perfusion & Carbon dioxide removal under physiological conditions. Wartime experience guided developers in delineating the ideal properties of an oxygen carrier for military use: 
üUniversal compatibility, and thus no time-consuming testing for blood type;
üNo transmittable pathogens or allergens;
üLong-term storage capability, preferably under non-refrigerated conditions;
üSafety and non-toxicity; and
üSuperior oxygen delivery capability, resulting in oxygenation of peripheral tissues even after massive blood loss.

DISCUSSION:
The first obvious candidate was haemoglobin (Hb), the oxygen-carrying molecule itself, but was noted serious complications with this approach, including  vasoconstriction, abdominal pain and acute kidney failure. Indeed, Hb is toxic per se, because outside a red blood cell, its tetrameric structure is rapidly broken down into dimers and monomers that are taken up by the kidney where they impair nephrological functions. Given these problems with pure Hb, two main strategies for the development of blood substitutes have emerged: oxygen carriers that are based on modified Hb; and perfluorocarbon (PFC)-based products.
Hb Based Oxygen Carriers : Main stay of research concentration is laid on HBOCs as Hb can be obtained easily in sufficient quantity. The real challenge is how to control the negative side effects of the protein. Various researchers have therefore tried to stabilize the Hb tetramer by using recombinant techniques or chemical crosslinkers and have added 2,3- DPG analogues to reconstitute the normal oxygen affinity of Hb along with polymerization .
Products : 
a.PolyHeme®, a glutaraldehyde polymerized human Hb developed by Northfield Laboratories ,is now being tested in a phase III trial for early treatment of trauma patients.
b.Hemospan™, is a non-polymerized human Hb molecule with its surface modified by polyethylene glycol (PEG) which is anticipated to enter phase III trials early next year.
c.Other artificial RBCs 2nd Generation – PolyHb with superoxide dismutase and catalase enzyme.
d.3rd Generation – Hb in lipid vesicles & biodegradable polymeric membrane- nanoartificial RBCs. PFCs :
The main alternative to Hb-based solutions are PFCs, which are hydrocarbon like substances with fluorine instead of hydrogen atoms. Unlike Hb, gas molecules are not chemically bound to PFCs, but are absorbed and released by simple diffusion. They are insoluble in water and must be emulsified before infusion, and they are rapidly removed from circulation and sequestered in the reticuloendothelial system, where they can cause complications. Furthermore, the oxygen carrying capacity of PFCs depends on the oxygen partial pressure to which the solution is exposed, which also limits their use to situations with supplemental oxygen and controlled ventilation.
Products :
a.Fluosol® : The only oxygen carrier approved so far by the FDA is a PFC emulsion, developed by Green Cross Corporation in Japan.
b.OxygentTM : a new PFC emulsion, , designed to overcome the problems that eventually caused the FDA to pull Fluosol from the market. Oxygent is intended to reduce the need for donor blood during surgery; it has already completed a phase III clinical study.


USES:
§Haemorrhage ,
§Traumatic wounds
§Auto-immune hemolysis ,
§Air embolism ,
§Haemolytic shock
§Sickle cell anemia
§Thalasemmia ,
§Organ preservation 
CONCLUSION
Whether the Hb- or PFC-based products under trial are eventually approved for clinical or battlefield use remains to be seen. Substituting blood is a complex process and even the latest products may need further refinement to overcome various side effects. “Each new generation of red blood cell substitutes is increasingly more complicated and expensive,”  
 Nevertheless, given the great demand for artificial blood substitutes and the increasing interest from academic researchers and biomedical companies are positive that future products will be safe enough for widespread use in surgical theatres and in the field, to rescue people after massive trauma.
REFERENCES
a)Chang, TMS. Artificial cells: biotechnology, nanotechnology, blood substitutes, regenerative medicine, bioencapsulation, cell/stem cell therapy. Singapore: World Science Publisher; 2007. p.452
b)EUROPEAN MOLECULAR BIOLOGY ORGANIZATION EMBO reports VOL 6 | NO 8 | 2005 pg no.705