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Cell senescence database
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Basic Information

Gene ID

673

Name

BRAF

Synonymous

B-Raf proto-oncogene, serine/threonine kinase;BRAF;B-Raf proto-oncogene, serine/threonine kinase

Definition

94 kDa B-raf protein|B-Raf proto-oncogene serine/threonine-protein kinase (p94)|murine sarcoma viral (v-raf) oncogene homolog B1|proto-oncogene B-Raf|serine/threonine-protein kinase B-raf|v-raf murine sarcoma viral oncogene homolog B|v-raf murine sarcoma

Position

7q34

Gene type

protein-coding

Title

Abstract

Growth factors rescue cutaneous melanoma cells from apoptosis induced by knockdown of mutated (V 600 E) B-RAF.

Constitutive activation of the RAS-RAF-MEK-ERK signaling cascade is a hallmark of cutaneous malignant melanoma. A single activating mutation (c.1799 T>A; p.V 600 E) in the gene encoding the serine/threonine kinase B-RAF occurs in >60% of the tumors. Previous work has shown that knockdown of (V 600 E)B-RAF by RNA interference induces a variety of phenotypic changes in cultured melanoma cells, including lower proliferation rates, reduced anchorage-independent growth and apoptosis. Here, we show that the majority of melanomas harboring the (V 600 E)B-RAF mutation have retained the wild-type (WT) B-RAF allele, and that these cells can be rescued from the effects of (V 600 E)B-RAF knockdown by stimulation with growth factors. Ectopic expression of short hairpin RNAs specifically suppressing (V 600 E)B-RAF in melanoma cell lines reduced colony formation by approximately 80%. This response could be rescued by basic fibroblast growth factor, hepatocyte growth factor or, to a lesser extent, endothelin-1. Rescue with growth factors was not possible in cell lines lacking (WT)B-RAF. Single-cell clones with efficient knockdown of (V 600 E)B-RAF could be propagated in the presence of basic fibroblast growth factor but underwent apoptosis or senescence-like growth arrest upon withdrawal of this growth factor. The ability of growth factors to modulate the response of (V 600 E)B-RAF knockdown in melanoma cells may have both experimental and therapeutic implications.

BRAFE600-associated senescence-like cell cycle arrest of human naevi.

Most normal mammalian cells have a finite lifespan, thought to constitute a protective mechanism against unlimited proliferation. This phenomenon, called senescence, is driven by telomere attrition, which triggers the induction of tumour suppressors including p16(INK4a) (ref. 5). In cultured cells, senescence can be elicited prematurely by oncogenes; however, whether such oncogene-induced senescence represents a physiological process has long been debated. Human naevi (moles) are benign tumours of melanocytes that frequently harbour oncogenic mutations (predominantly V600E, where valine is substituted for glutamic acid) in BRAF, a protein kinase and downstream effector of Ras. Nonetheless, naevi typically remain in a growth-arrested state for decades and only rarely progress into malignancy (melanoma). This raises the question of whether naevi undergo BRAF(V600E)-induced senescence. Here we show that sustained BRAF(V600E) expression in human melanocytes induces cell cycle arrest, which is accompanied by the induction of both p16(INK4a) and senescence-associated acidic beta-galactosidase (SA-beta-Gal) activity, a commonly used senescence marker. Validating these results in vivo, congenital naevi are invariably positive for SA-beta-Gal, demonstrating the presence of this classical senescence-associated marker in a largely growth-arrested, neoplastic human lesion. In growth-arrested melanocytes, both in vitro and in situ, we observed a marked mosaic induction of p16(INK4a), suggesting that factors other than p16(INK4a) contribute to protection against BRAF(V600E)-driven proliferation. Naevi do not appear to suffer from telomere attrition, arguing in favour of an active oncogene-driven senescence process, rather than a loss of replicative potential. Thus, both in vitro and in vivo, BRAF(V600E)-expressing melanocytes display classical hallmarks of senescence, suggesting that oncogene-induced senescence represents a genuine protective physiological process.

Differential gene expression in melanocytic nevi with the V600E BRAF mutation.

We studied gene expression in 18 melanocytic nevi with and four nevi without the V600E mutation in the BRAF gene using HG-U133A 2.0 microarray with 22,277 transcripts. Data analysis revealed 92 genes up-regulated and 105 genes down-regulated in nevi with the mutation compared to nevi without mutation. pathway analysis showed that differentially regulated genes mapped to 10 genetic networks. The major network included genes involved in cell death, cell cycle, and cellular growth and proliferation. Up-regulated genes in nevi with the mutation included CDKN2A, CDKN1C, and MITF; whereas down-regulated genes included those involved in apoptotic and other pathways. Principal component analysis identified 22 probe sets (20 genes) that caused separate segregation of nevi with and without mutations. In conclusion, our data showed differences in gene expression between nevi with and without the V600E BRAF mutation. Moreover, nevi with mutations showed over-expression of genes involved in melanocytic senescence and cell cycle inhibition.

Proliferation arrest in B-Raf mutant melanoma cell lines upon MAPK pathway activation.

Due to elaborate control mechanisms, in benign tumors the activation of oncogenes primarily induces senescence, associated with cessation of cellular proliferation; for example, melanocytic nevi expressing mutant B-Raf. These mechanisms include the RB and/or the p53 pathway. The current model of melanomagenesis postulates that progression to immortal melanoma cells requires inactivating aberrations in signaling cascades controlling senescence. Thus, melanoma cells carrying mutant B-Raf should be resistant to mitogen-activated protein kinase (MAPK) pathway-induced senescence. Here, we demonstrate that hyperactivation of the MAPK pathway following activation of an inducible form of oncogenic C-Raf induces a senescence-like proliferation arrest in B-Raf mutant melanoma cells. This Raf-induced senescence is initially strictly dependent on MEK signaling, but seems to be independent of MAPK signaling after prolonged continuance. It is associated with reduced levels of RB phosphorylation and an increase in p21 expression, but is independent of p16(Ink4a) and p53. These data argue against the existence of fundamental changes in melanoma cells completely precluding senescence.

Identification of the V600D mutation in Exon 15 of the BRAF oncogene in congenital, benign langerhans cell histiocytosis.

Langerhans cell histiocytosis (LCH) is a well-known but rare disease that may occur at any age with markedly variable clinical features: self-regressive, localized, multiorgan, aggressive, or fatal outcome. Congenital LCH is rare and often clinically benign. While LCH is characterized by a clonal proliferation of Langerhans cells, its etiology is unknown. Although BRAF V600E mutations were recently identified as a recurrent genetic alteration in LCH cases, the clinical significance of this mutation within the heterogeneous spectrum of LCH is also currently unknown. We studied a cutaneous, benign form of congenital LCH that occurred in a newborn male, without recurrence for 8 years. Histopathologically, the skin lesion excised after birth showed the typical cytologic and immunophenotypic features of LCH. Sequencing analysis of Exon 15 of the BRAF gene revealed the V600D mutation, with an allelic abundance of 25-30%, corresponding to the LCH cells being hemizygous for the mutant allele. BRAF V600E-specific polymerase chain reaction was negative. Our report is the first to identify the rare, variant BRAF V600D mutation in LCH, and provides support for constitutively activated BRAF oncogene-induced cell senescence as a mechanism of regression in congenital, benign LCH. Further, our clinicopathologic findings provide proof for the first time that the V600D mutation can also occur in the absence of ultraviolet light, and can occur in a clinically benign proliferation, similar to the V600E mutation. Additional clinicopathologic studies in larger numbers of LCH patients may be valuable to ascertain the pathophysiologic role of BRAF mutations in LCH.

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