-->
Showing posts with label CaMKIV. Show all posts
Showing posts with label CaMKIV. Show all posts

Friday, December 16, 2011

Stopping Autoimmunity at its Roots: New Advances in the Treatment of Lupus Nephritis


Autoimmune diseases are the result of our own immune systems turning against us. There are various mechanisms through which autoimmunity can develop, most of which involve the breakdown in peripheral tolerance, which are the mechanisms our body puts in place to keep autotreactive T and B cells from damaging self tissue. If an autoreactive lymphocyte escapes central tolerance and finds its way to the periphery, it becomes the job of regulatory T cells (Treg cells) or tolerogenic DCs to anergize or delete the autoreactive lymphocyte. If there are abnormalities in regulatory T cells, then peripheral tolerance is hindered and an autoimmune disease could develop. Other conditions could result if problems exist in compliment deposition since C3b is responsible for helping immune complexes remain soluble when they pass through narrow channels in the body’s periphery. When cells are destroyed during an autoimmune attack, internal cell contents can be leaked and then work as antigens for the activation of additional lymphocytes. This occurrence may perpetuate an autoimmune response. Regardless of the mechanism, these responses are damaging to the host and require the development of effective treatments.
One damaging autoimmune disease, systemic lupus erythematosus (SLE), is caused by the production of “antinuclear” antibodies which target internal cell components such as DNA when these molecules are released from cells. This disease can affect the skin, joints, kidney, lung, heart, and brain. Since SLE’s symptoms are often varied, the disease can be mistaken for other illnesses. The mechanism of action of SLE has been linked to abnormal B cell development and activation. These B cells are also more sensitive to cytokines than would normally be expected. Furthermore, the fact that an increase in IL-10, a B-cell stimulating molecule, has been associated with SLE patients provides additional evidence that this disease is caused by B cells. This observation is interesting because typically we associate IL-10 as an immunosuppressive cytokine, however in the case of SLE patients, the immunostimulatory effects of IL-10 on B cells appear to outweigh its immunosuppressive value (1). SLE is considered to be a type-III hypersensitivity because these activated B cells produce autoantibodies that can form insoluble immune complexes that basically “clog up” narrow capillaries or other parts of the body such as the glomerulus, a spherical structure in the kidneys which filters blood. As a result, many SLE patients manifest the serious disorder called lupus nephritis. Lupus nephritis is a major cause of morbidity and mortality among SLE patients (2). It results when immune complexes interfere or cause damage to structures in the kidney, such as the glomerulus, and can rapidly worsen to kidney failure. Treatment for lupus nephritis typically focuses on the use of medications to suppress the immune system in order to improve kidney function. Dialysis, to control symptoms of kidney failure, and kidney transplantation are other treatments that may be recommended.
Recent research by K. Ichinose and several colleagues at Beth Israel Deaconess Medical Center and Harvard Medical School has been focusing on the cause of lupus nephritis rather than on new treatments for the malady. The researchers are hoping that their efforts will lead to the development of a more targeted drug which can do more for patients than the current drugs that work by suppressing the immune system on a large scale. They chose to study mesangial cells (MC’s) in the glomerulus because they proliferate during lupus nephritis, a phenomenon that could link MC’s to the cause of this autoimmune disease. Typically, the function of these specialized cells is related to support, filtration, and phagocytosis of immunoglobulin. These cells can also produce the proinflammatory cytokine IL (interleukin)-6, found during glomerular inflammation. The researchers also looked at calcium/calmodulin-dependent kinase type IV (CaMKIV). This kinase belongs to a family of kinases that regulates autoimmunity and cell proliferation. CaMKIV is a multifunctional protein that is highly expressed in the central nervous system. Because increased expression of CaMKIV has been linked to certain cancers, some researchers see this as evidence that it is involved in cell proliferation (3). This observation led them to perform tests to ascertain whether CaMKIV could be deleted or its actions blocked, possibly leading to decreased MC proliferation and IL-6 production that could in theory alleviate an autoimmune response.

Monday, December 5, 2011

CaMKIV: A Potential Target for a Treatment for Lupus Nephritis

Systemic lupus erythematosus (SLE) is an autoimmune disorder that currently has no cure (PubMed Health, 2011). SLE may result in abnormal deposits in kidney cells, which leads to complications in the kidneys. This results in the condition lupus nephritis, in which extensive damage to the kidney occurs and ultimately results in kidney failure (PubMed Health, 2011). There has been much speculation that Calcium/calmodulin-dependent protein kinases (CaMKs) is a factor in the progression of SLE, for it has previously been demonstrated that CaMKIV contributes to decreased IL-2 production in SLE T cells (Karin, 1995). CaMKIV may also play a role in the production of IL-6, for it has been demonstrated that just before the age when lupus nephritis is developed, spleen cells of mice contain a subpopulation of Th cells that selectively induced their B cells in vitro to produce highly cationic IgG autoantibodies to both single-stranded DNA and double-stranded DNA (Datta, 1987). This may be of critical importance, for it has also been shown that IL-6 is a feed forward process in which macrophages respond to IgG to support further B-cell production of IgG (Maeda, 2010).
It has previously been demonstrated that inhibiting CaMKIV in lupus-prone MRL/lpr mice mitigates disease pathology (Karin, 1995). Ichinose et al. have recently elaborated on the cellular abnormalities that may be controlled by CaMKIV (2011). These results have helped to clarify the cellular processes that result in the damage of kidneys in lupus nephritis by producing large amounts of autoimmune mesangial cells and increasing production of IL-6 and have shown that CaMKIV may be a critical target in developing treatments for lupus nephritis.