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. Author manuscript; available in PMC: 2009 Aug 1.
Published in final edited form as: Radiat Res. 2008 Aug;170(2):156–162. doi: 10.1667/RR1277.1

TABLE 2.

Comparative Radiation Chemical Yields in nmol/J for Trapped Deoxyribose Radicals, Free Base Release and Direct SSBs

Γ G(OH)a Gdir(fbr)b G(dsb)c Gdir(ssb)d m(ssb)e Gdir(ssb)/G(dsb) GdRib(fr)f G(diff)g
2.5 ± 0.2 0 134 ± 4 4.8 ± 0.9 124 ± 4 1.4 ± 0.2 26 ± 5 33 ± 5 91 ± 4
22.5 ± 1.1 23 >189 ± 21 3.5 ± 0.5 >182 ± 21 >2.8 ± 0.5 >52 ± 10 79 ± 12 >103 ± 21
<212 ± 21 <205 ± 21 <3.1 ± 0.5 <59 ± 10 <126 ± 21
a

A yield of 70 nmol/J (5) was applied to the water target mass, which consists of the water lying beyond the hole transfer layer: Γ-10 = target mass = 12.5 waters/nucleotide for Γ = 10.

b

Gdir(fbr) ≥ G(fbr) − G(OH) and ≤G(fbr).

c

Values from ref. (12).

d

Gdir(ssb) = G(fbr) − 2 × G(dsb), assuming each SSB of the DSB gives a free base release.

e

SSB multiplicity = m(ssb) = Gdir(ssb)/G(sc-loss).

f

GdRib(fr) values were reported in Table I of ref. (13).

g

Shortfall = G(diff) = Gdir(ssb) − GdRib(fr).