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G Pinero

Publications and source records attributed to G Pinero.

4 recordsLinked to original sources

A Cbfa1-dependent genetic pathway controls bone formation beyond embryonic development.

The molecular mechanisms controlling bone extracellular matrix (ECM) deposition by differentiated osteoblasts in postnatal life, called hereafter bone formation, are unknown. This contrasts with the growing knowledge about the genetic control of osteoblast differentiation during embryonic development. Cbfa1, a transcriptional activator of osteoblast differentiation during embryonic development, is also expressed in differentiated osteoblasts postnatally. The perinatal lethality occurring in Cbfa1-deficient mice has prevented so far the study of its function after birth. To determine if Cbfa1 plays a role during bone formation we generated transgenic mice overexpressing Cbfa1 DNA-binding domain (DeltaCbfa1) in differentiated osteoblasts only postnatally. DeltaCbfa1 has a higher affinity for DNA than Cbfa1 itself, has no transcriptional activity on its own, and can act in a dominant-negative manner in DNA cotransfection assays. DeltaCbfa1-expressing mice have a normal skeleton at birth but develop an osteopenic phenotype thereafter. Dynamic histomorphometric studies show that this phenotype is caused by a major decrease in the bone formation rate in the face of a normal number of osteoblasts thus indicating that once osteoblasts are differentiated Cbfa1 regulates their function. Molecular analyses reveal that the expression of the genes expressed in osteoblasts and encoding bone ECM proteins is nearly abolished in transgenic mice, and ex vivo assays demonstrated that DeltaCbfa1-expressing osteoblasts were less active than wild-type osteoblasts. We also show that Cbfa1 regulates positively the activity of its own promoter, which has the highest affinity Cbfa1-binding sites characterized. This study demonstrates that beyond its differentiation function Cbfa1 is the first transcriptional activator of bone formation identified to date and illustrates that developmentally important genes control physiological processes postnatally.

Amino Acid Sequence↗

Expression and localization of PG-Lb/epiphycan during mouse development.

We have examined the expression pattern of the PG-Lb/epiphycan gene that encodes a small leucine-rich repeat proteoglycan during mouse embryonic development. PG-Lb/epiphycan mRNA transcripts were first detected at E12.5 days postcoitus (dpc) at high levels in structures that were developing cartilage elements. The gene is expressed in a very specific temporal and spatial fashion in cartilaginous structures. To examine PG-Lb/epiphycan gene expression during cartilage development in more detail, we performed in situ hybridization on hindlimb sections at specific stages of mouse embryonic development. The expression of PG-Lb/epiphycan was compared to that of collagen type II and collagen type X, which are early and late markers for cartilage development, respectively. The expression of PG-Lb/epiphycan occurs later than collagen type II in cartilage development, but its expression appears in the growth plate before and is excluded from the zone of hypertrophic chondrocytic cells expressing collagen type X. An antibody against PG-Lb/epiphycan localized the protein within the entire growth plate of the E17.5 dpc embryonic hindlimb cartilage including the hypertrophic zone where PG-Lb/epiphycan gene expression is turned off. Our results show that PG-Lb/epiphycan gene expression is an intermediate marker for chondrogenesis, and that the protein can be localized to the extracellular matrix surrounding resting, proliferating, and hypertrophic chondrocytes by immunofluorescence histochemistry.

Animals↗

Increased bone formation in osteocalcin-deficient mice.

Vertebrates constantly remodel bone. The resorption of preexisting bone by osteoclasts and the formation of new bone by osteoblasts is strictly coordinated to maintain bone mass within defined limits. A few molecular determinants of bone remodelling that affect osteoclast activity have been characterized, but the molecular determinants of osteoblast activity are unknown. To investigate the role of osteocalcin, the most abundant osteoblast-specific non-collagenous protein, we have generated osteocalcin-deficient mice. These mice develop a phenotype marked by higher bone mass and bones of improved functional quality. Histomorphometric studies done before and after ovariectomy showed that the absence of osteocalcin leads to an increase in bone formation without impairing bone resorption. To our knowledge, this study provides the first evidence that osteocalcin is a determinant of bone formation.

Animals↗