Follicular lymphoma
Follicular lymphoma
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Follicular lymphoma

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Follicular lymphoma

Follicular lymphoma (FL) is a cancer that involves certain types of white blood cells known as lymphocytes. This cancer is a form of Non-Hodgkin Lymphoma and it originates from the uncontrolled division of specific types of B-cells (centrocytes and centroblasts). These cells normally occupy the follicles (nodular swirls of various types of lymphocytes) in the germinal centers of lymphoid tissues such as lymph nodes. The cancerous cells in FL typically form follicular or follicle-like structures (see adjacent Figure) in the tissues they invade. These structures are usually the dominant histological feature of this cancer.

In the US and Europe, this disease is the second most common form of non-Hodgkin's lymphomas, exceeded only by diffuse large B-cell lymphoma. FL accounts for 10–20% of non-Hodgkin's lymphomas, and ~15,000 new cases of follicular lymphoma are diagnosed each year in the US and Europe. Recent studies indicate that FL is similarly prevalent in Japan.

FL is a broad and extremely complex clinical entity with a wide range of manifestations which have not yet been fully systematized. It is commonly preceded by a benign precancerous disorder in which abnormal centrocytes and/or centroblasts accumulate in lymphoid tissue. They may then circulate in the blood to cause an asymptomatic condition termed in situ lymphoid neoplasia of the follicular lymphoma type (i.e. ISFL). A small percentage of these cases progress to FL. Most commonly, however, FL presents as a swelling of lymph nodes in the neck, armpits, and/or groin. Less often, it presents as a gastrointestinal tract cancer, a cancer in children involving lymphoid tissues of the head and neck area (e.g., tonsils), or one or more masses in non-lymphoid tissues such as the testes.

FL is typically a slowly-progressing disease and its course is medically indolent, meaning it can persist essentially unchanged for years without symptoms. However, each year 2–3% of FL cases progress to a highly aggressive form often termed stage 3B FL, to an aggressive diffuse large B-cell lymphoma, or to another type of aggressive B-cell cancer. These transformed follicular lymphomas (t-FL) are essentially incurable. However, recent advancements in the treatment of t-FL (e.g., the addition to standard chemotherapy of agents such as rituximab) have improved overall survival times. These newer regimens may also delay the transformation of FL to t-FL. Additional advances in understanding FL may lead to further improvements in treating the disease.

The survival rate of follicular lymphoma is between 50 and 90 percent, depending on the subtype and grading of the disease.

The serial progressions of in situ FL to FL and FL to t-FL appear to involve the accumulation of increasing numbers of genomic alterations (i.e. chromosome abnormalities and gene mutations) in the formative B-cell precursors to these disorders. At least some of these alterations appear to cause the over-expression or under-expression of the products of genes that regulate these cells' susceptibility to develop further genomic alterations, to survive, to proliferate, and/or to spread to other tissues. In consequence, multiple B-cell clones that exhibit increasing genomic alterations and malignant behaviors populate the disorder. No single genomic alteration seems responsible for the development of each of the spectrum of FL disorders. Rather, interactions between multiple genomic alterations appear to underlie this serial progression.

In situ follicular lymphoma is an accumulation of monoclonal B cells (i.e. cells descendent from a single ancestral cell) in the germinal centers of lymphoid tissue. These cells commonly bear a pathological genomic abnormality, i.e. a translocation between position 32 on the long (i.e. "q") arm of chromosome 14 and position 21 on chromosome 18's q arm. This translocation juxtaposes the B-cell lymphoma 2 (BCL2) gene on chromosome 18 at position q21.33 near to the immunoglobulin heavy chain locus (IGH@) on chromosome 14 at position q32. In consequence, BCL2 overexpresses its product, BCL2 apoptosis regulator (i.e. Bcl2). Bcl2 functions to inhibit programmed cell death thereby prolonging cell survival. The overexpression of Bcl2 in the B-cells of ISFL is thought to be a critical factor in their pathological accumulation and subsequent malignant progression. Small numbers (e.g. 1 in 100,000) of circulating nucleated blood cells bearing this t(14:18)q32:q21) translocation are found in 50–67% of otherwise healthy individuals. The prevalence of this finding increases with age and years of tobacco smoking. Since most individuals with this translocation in their blood cells do not develop ISFL, the t(14:18)(q32:q21) translocation, while prolonging cell survival, must be just one step in the development of ISFN. This translocation is proposed to occur during the early development of immature bone marrow B-cells (i.e. pre-B-cells/pro-B-cells) after which these cells circulate freely and in rare cases accumulate and mature to centrocytes and/or centroblasts in the germinal centers of lymphoid follicles to form ISFL. The mechanism favoring this localization and further accumulation is unclear.

Individuals with ISFL progress to FL at a rate of 2–3%/year for at least the first 10 years following diagnosis. This progression likely involves the acquisition of genomic aberrations besides the t(14:18)q32:q21) translocation in the ISFL B-cells. Suspect mutations include those in the following genes: 1) EZH2 (encodes polycomb repressive complex 2 family protein which is involved in maintaining the transcriptional repressive state of various genes and is found in up to 27% of FL cases); 2) CREBBP (encodes CREB-binding protein which contributes to the activation of various genes); 3) TNFSF14 (encodes tumor necrosis factor superfamily member 14, a member of the tumor necrosis factor superfamily which may function as a co-stimulatory factor for the activation of lymphoid cells); and 4) KMT2D (encodes histone-lysine N-methyltransferase 2D, a histone methyltransferase which regulates the expression of various genes). ISFL may also acquire numerous copy-number variations (i.e. duplications and deletions of a portion of a chromosome along with any of the genes contained therein) that may contribute to FL. In all cases, the number of genetic abnormalities acquired in the B-cells of ISFL are much less than those in FL.

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