Attachment of dissimilar materials is challenging due to stress concentrations that arise at their interface. The tendon-to-bone attachment site (enthesis) solves this mechanical problem using a functionally graded transitional tissue that includes spatial gradients in structure, extracellular matrix composition, and cell phenotype. This strong and tough attachment system is formed during fetal and postnatal timepoints under the regulation of molecular and biophysical cues. Unfortunately, this unique structure is not recreated after surgical repair and healing, leading to remarkably high failure rates. Therefore, our goal is to gain an understanding of tendon enthesis development in order to motivate regenerative strategies for enthesis repair. Our overall hypothesis is that temporal and spatial regulation of biochemical (TGF and Ihh) and biophysical (muscle force) cues are necessary to drive the development of a functional enthesis and for regeneration after injury. Our hypothesis is motivated by our recent work, which showed that embryonic tendon-to-bone attachment initiates from a distinct population of progenitor cells and postnatal enthesis maturation and mineralization is driven by Indian hedgehog signaling and muscle loading. It remains unclear, however, how these cell populations at the developing attachment regulate the formation of a mature enthesis. Therefore, Aim 1 will determine the lineage (or lineages) of the cells that compose the mature enthesis, starting at embryonic timepoints and progressing through skeletal maturity.
Aim 2 will determine the molecular and mechanical regulation of the enthesis cell phenotype(s), focusing on TGF for early developmental events and Ihh signaling for later mineralization events.
In Aim 3, we will determine the role of enthesis cell lineages and molecular signaling for repair and regeneration of the injured enthesis, focusing on cells responsible for Ihh signaling at the enthesis.
These aims will allow us to identify and characterize the cells that populate the enthesis and to uncover the molecular and biophysical sequence of events that is required for their differentiation. Results will have a direct impact on future cell- and growth factor-based regenerative strategies for tendon-to-bone repair.

Public Health Relevance

Surgical re-attachment of torn tendons to their bony insertions is a clinically significant problem, especially in the shoulder and knee. For example, current failure rates after rotator cuff repair range from 20% to 94%, depending on the patient population. This research will define the critical developmental events that lead to a robust tendon-to-bone attachment. Results will lead to enhanced tendon-to-bone healing and subsequently in improvements in the health and quality-of-life of individuals afflicted with rotato cuff and anterior cruciate ligament injuries.

Agency
National Institute of Health (NIH)
Institute
National Institute of Arthritis and Musculoskeletal and Skin Diseases (NIAMS)
Type
Research Project (R01)
Project #
3R01AR055580-06A1S1
Application #
9242744
Study Section
Program Officer
Tyree, Bernadette
Project Start
2016-06-01
Project End
2017-07-31
Budget Start
2016-06-01
Budget End
2016-07-31
Support Year
6
Fiscal Year
2016
Total Cost
$12,717
Indirect Cost
$4,769
Name
Columbia University (N.Y.)
Department
Orthopedics
Type
Schools of Medicine
DUNS #
621889815
City
New York
State
NY
Country
United States
Zip Code
10032
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Genin, Guy M; Thomopoulos, Stavros (2017) The tendon-to-bone attachment: Unification through disarray. Nat Mater 16:607-608
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Colasanto, Mary P; Eyal, Shai; Mohassel, Payam et al. (2016) Development of a subset of forelimb muscles and their attachment sites requires the ulnar-mammary syndrome gene Tbx3. Dis Model Mech 9:1257-1269
Killian, Megan L; Thomopoulos, Stavros (2016) Scleraxis is required for the development of a functional tendon enthesis. FASEB J 30:301-11
Saadat, Fatemeh; Deymier, Alix C; Birman, Victor et al. (2016) The concentration of stress at the rotator cuff tendon-to-bone attachment site is conserved across species. J Mech Behav Biomed Mater 62:24-32
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Dyment, Nathaniel A; Breidenbach, Andrew P; Schwartz, Andrea G et al. (2015) Gdf5 progenitors give rise to fibrocartilage cells that mineralize via hedgehog signaling to form the zonal enthesis. Dev Biol 405:96-107

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