<div><p>Organ perfusion is regulated by vasoactivity and structural adaptation of small arteries and arterioles. These resistance vessels are sensitive to pressure, flow and a range of vasoactive stimuli. Several strongly interacting control loops exist. As an example, the myogenic response to a change of pressure influences the endothelial shear stress, thereby altering the contribution of shear-dependent dilation to the vascular tone. In addition, acute responses change the stimulus for structural adaptation and vice versa. Such control loops are able to maintain resistance vessels in a functional and stable state, characterized by regulated wall stress, shear stress, matched active and passive biomechanics and presence of vascular reserv...
none10siHistological specimen and textbook schematics evoke static pictures of vascular networks. Ho...
Small artery tone is a major determinant of organ tissue blood flow and of total peripheral resistan...
Small artery tone is a major determinant of organ tissue blood flow and of total peripheral resista...
Organ perfusion is regulated by vasoactivity and structural adaptation of small arteries and arterio...
Blood flow regulation by small arteries and arterioles includes adaptation of both vascular tone and...
In this chapter, we discuss how biomechanical forces influence vascular design. We will focus on the...
The growth and remodeling of arteries, as controlled by the local stress state and the sensory input...
The growth and remodeling of arteries, as controlled by the local stress state and the sensory input...
Remodeling of the vascular wall occurs in several cardiovascular pathologies. A structural change in...
Throughout the life of animals and human beings, blood vessel systems are continuously adapting thei...
tural adaptation and stability of microvascular networks: theory and simulations. Am. J. Physiol. 27...
Hashimoto. Model of structural and functional adaptation of small conductance vessels to arterial hy...
The volumes in this authoritative series present a multidisciplinary approach to modeling and simula...
The inherent complexity of the mammalian systemic arterial system has presented numerous challenges ...
The inherent complexity of the mammalian systemic arterial system has presented numerous challenges ...
none10siHistological specimen and textbook schematics evoke static pictures of vascular networks. Ho...
Small artery tone is a major determinant of organ tissue blood flow and of total peripheral resistan...
Small artery tone is a major determinant of organ tissue blood flow and of total peripheral resista...
Organ perfusion is regulated by vasoactivity and structural adaptation of small arteries and arterio...
Blood flow regulation by small arteries and arterioles includes adaptation of both vascular tone and...
In this chapter, we discuss how biomechanical forces influence vascular design. We will focus on the...
The growth and remodeling of arteries, as controlled by the local stress state and the sensory input...
The growth and remodeling of arteries, as controlled by the local stress state and the sensory input...
Remodeling of the vascular wall occurs in several cardiovascular pathologies. A structural change in...
Throughout the life of animals and human beings, blood vessel systems are continuously adapting thei...
tural adaptation and stability of microvascular networks: theory and simulations. Am. J. Physiol. 27...
Hashimoto. Model of structural and functional adaptation of small conductance vessels to arterial hy...
The volumes in this authoritative series present a multidisciplinary approach to modeling and simula...
The inherent complexity of the mammalian systemic arterial system has presented numerous challenges ...
The inherent complexity of the mammalian systemic arterial system has presented numerous challenges ...
none10siHistological specimen and textbook schematics evoke static pictures of vascular networks. Ho...
Small artery tone is a major determinant of organ tissue blood flow and of total peripheral resistan...
Small artery tone is a major determinant of organ tissue blood flow and of total peripheral resista...