E
|
Energy function or Hamiltonian |
J
s+λ
s(s−S)2+λ
v(v−V)2
|
J
|
Edhesion energy (per contact length) |
J
|
J
|
J
|
s
|
Cell surface |
k
s
l
2
|
4π
r
2
|
|
v
|
Cell volume |
k
v
l
3
|
|
|
S
|
Rest surface area |
|
|
|
V
|
Ttarget cell volume |
|
|
|
λ
s
|
Surface constraint |
λ
s
|
λ
s
|
λ
s
|
λ
v
|
Volume constraint |
λ
v
|
λ
v
|
λ
v
|
l
|
Basic length scale |
l
|
r (radius) |
l
|
k
s
|
Surface scaling factor |
|
4π
|
|
k
v
|
Volume scaling factor |
|
|
|
L
s
|
Rest surface area, using basic length scale |
|
|
|
L
v
|
Target cell volume,using basic length scale |
|
|
|
E
|
Energy function or Hamiltonian, using basic length scale |
|
|
|
|
Energy variation per length change |
|
4π
r(2γ−r
Π) |
|
γ
|
Interfacial tension |
|
|
|
Π
|
Pressure |
|
|
|
|
Energy variation per length change, full expansion |
2k
s(a
l
5+b
l
3−c
l
2+τ
l) |
8π(a
r
5+b
r
3−c
r
2+τ
r) |
|
a
|
Aggregate parameterin equation |
|
|
|
b
|
Aggregate parameterin equation |
2k
s
λ
s
|
8π
λ
s
|
|
c
|
Aggregate parameterin equation |
|
|
|
τ
|
Length-independent component of interfacial tension |
|
|
|
ϕ
|
|
|
|
|
ψ
|
|
|
|
|
ν (when ϕ>0) |
|
|
|
|
μ(when ϕ>0) |
|
|
|
|
ν
′(when ϕ=0) |
|
|
|
|
μ
′(when ϕ=0) |
ψ
|
|
|
|
Bifurcation 1 (γ(l
∗)=0) |
Transition from negative to positive interfacial tension at equilibrium |
|
|
|
|
|
ν
′=0 |
ν
′=0 |
ν
′=0 |
Bifurcation 2 (pseudo-transcritical) |
Transition of l
∗=0 from unstable to stable |
ν=0 |
ν=0 |
ν=0 |
|
|
ν
′=0 |
ν
′=0 |
ν
′=0 |
Bifurcation 3 (fold) |
Transition from 2 to 0 non-trivial equilibria |
ν=f(μ)(μ−f(μ)), where
|
ν=f(μ)(μ−f(μ)) |
ν=f(μ)(μ−f(μ)) |
|
|
|
|
|