Lucie E Bourne, Aikta Sharma, Scott Dillon, Jacob Keen, Soher N Jayash, Natalie Crump, Lucinda A E Evans, Maya Karmali, Worachet Promruk, Claire E Clarkin, Sonoko Narisawa, Louise Stephen, Brian L Foster, José Luis Millán, Colin Farquharson, Katherine A Staines
Biomineralization is essential for skeletal integrity, yet the synergistic roles of tissue non-specific alkaline phosphatase (TNAP) and PHOSPHO1 in postnatal bone remain unclear. We generated a novel murine model with Prx1-driven deletion of Alpl (AlplPrx1/Prx1) on a global Phospho1-/- background, circumventing the perinatal lethality associated with dual global deletion and premature death of Alpl global knockouts. Multi-modal spatial phenotyping of the limbs revealed that mice lacking both TNAP and PHOSPHO1 exhibit distinct mineralization defects and altered anatomical structures at postnatal day 1 (PN1) and 3-weeks of age. Although viable, these mice did not thrive due to reduced size; thus further investigations were conducted on mice with heterozygous deletion of TNAP (Alplwt/Prx1;Phospho1-/-). Although smaller than wild-types at PN1 and 3 weeks old, these mice preserved gross limb structure and the single, functioning Alpl allele rescued biomineralization loss following dual phosphatase deletion. In 6-week animals, compromised epiphyses and metaphyses were only observed in AlplPrx1/Prx1 animals. Conversely, diaphyseal geometry and porosity were altered by Phospho1 deletion, compounded in Alplwt/Prx1;Phospho1-/‒ mice, and linked to alterations in collagen configuration, matrix mineralization, and growth plate deformities. Together, our findings support a mechanistic framework for TNAP and PHOSPHO1 in permissive biomineralization, providing critical insights into this fundamental process.