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(a)
2
(d)
O
2
O
NH
2
triphosgene
N
C
O
[13N]NH
3
NH13NH
2
O
13
NH
N
2
O
13
NH
O
O
13
O
NH
2
N
(b)
(c)
NH
triphosgene
Cl
N
[13N]NH
3
O
Cl
OH
triphosgene
N
O
N
O
2
H N
triphosgene
2
O
[13N]NH
[13N]NH
3
N
O
2
3
O
O
Cl
N
chloride (Scheme6.6b), or chloroformate (Scheme6.6c), respectively. This strategy was also applied to the preparation of [ chemical yield (56–74%, decay corrected and based on [
(22–33 GBq μmol
−1
).
The same group reported the use of anhydrous [
thalidomide[77] and [
13
[
N]NH3 was reacted with N-phthaloylglutamic anhydride to produce [13N]ammonoly-
13
N]dantrolene[78] (Scheme6.7). For thalidomide (Scheme6.7a),
13
N]carbamazepine (Scheme6.6d) with high radio-
13
N]NH3) and high molar activity
13
N]NH3 for the radiosynthesis of [13N]
sis. Under no-carrier-added conditions, low yields were achieved in this step (20%), although a signicant improvement was achieved by the addition of i-Pr
NEt (76%). This
2
step was followed by cyclization with carbonyldiimidazole to yield the desired tracer. After purication by HPLC, 570–780 MBq of pure (98%) tracer could be obtained, result­ing in a decay-corrected radiochemical yield of 56% ± 12% and molar activity values of 49 ± 24 GBq μmol
−1
. For the preparation of [13N]dantrolene (Scheme6.7b), the authors
reacted ethyl 2-{2-[5-(4-nitrophenyl)furfurylidene]hydrazino} acetate with triphosgene in
Scheme 6.6 One-
pot synthesis of
13
[

13
[

analogs using non­carrier added [ NH

3 13
of [
N]carbamaze-
13
N]
pine following a parallel strategy.
(a)
O
N
O
O
O
O
13
[
N]NH
iPr2NEt
o
130
C,
/DMF
min
2
3
O
N
O
13
OH
O
carbonyldiimidazole
O
NH
2
130
O
Cl
N
(1)
(2)
O
(b)
N
NH
O
O
N
O
2
O
DCE
iPr
NEt
2
o
75
min
30
C,
N
O
N
O
O
Scheme 6.7 Synthesis of [1313
Chapter 6: Synthesis of 13N- and 15O-Labeled Radiopharmaceuticals 125
DMF
o
min
2
C,
13
N]NH
[
purification
N
O
O
3
N
O
2
O
O
13
N
H
N
N
13
N
H
O
the presence of i-Pr2NEt to produce the corresponding carbonyl chloride. After removal of excess COCl to induce [
and without further purication, the mixture was reacted with [13N]NH3
2
13
N]ammonolysis. In this process, controlling the initial amount of triphosgene
was essential to achieve good yields under no-carrier-added conditions, as the excess of
COCl
reacted with [13N]NH3, thus preventing the desired [13N]ammonolysis. Final cycliza-
2
tion to yield [
13
N]dantrolene was achieved by purication using HPLC followed by heating of the collected fraction. The process was fully automated, resulting in non-corrected radiochemical yields close to 5% and molar activities around 30 GBq μmol
The preparation of
13
N-labeled peptides is the nal example in which [13N]NH3 is used
−1
.
as the labeling agent. The only study in the literature in which the preparation of the opioid tetrapeptide H-Tyr-D-Met(O)-Phe-Gly-[
13
N]NH2 is described is the study by Saji etal.[79]. This preparation was achieved by amidation of the activated p -nitrophenol ester with [
13
N]NH3, with a decay-corrected radiochemical yield of 48% in an overall pro-
duction time of 25 minutes.
13
[
far. Very recently, the preparation of
−
N]NO
has also been reported in other applications than those presented so
2
13
N-labeled polysubstituted triazoles has been
achieved via Huisgen cycloaddition following a four-step process[70]. First, cyclotron­produced [
step,
13
13
N-labeled diazonium salts were formed by reaction of [13N]NO
amines under acidic conditions. These were reacted with NaNO
in acidic media to yield the corresponding
−
N]NO
was reduced to [13N]NO
3
−
using a cadmium column. In the second
2
13
N-labeled azides, which were nally
−
with aromatic
2
and hydrazine hydrate
2
reacted with alkynes or aldehydes in the presence of a catalyst to yield the labeled tri­azoles (Scheme6.8). Full automation of the process was reported for only one triazole (compound 6 in Scheme6.8), which could be obtained in decay-corrected radiochemical yields of 11% ± 2% and molar activity of 4.6 ± 0.2 GBq μmol
−1
in an overall production time
of 25 minutes. In a dierent study, and by incorporation of the label into two dierent
positions, either in the diazonium salt or in the hydrazine, the same authors demon-
strated that the formation of the aryl azides proceeds under a stepwise mechanism via acyclic zwitterionic intermediates[42]. More recently, the formation of zoles was achieved by reaction of
13
N-labeled azide (by reaction of [13N]NO
13
N-labeled tetra-
−
with hydra-
2
zine hydrate in acid media) with a nitrile in the presence of a Cu-Cr-Al catalyst. Despite the conrmation of the presence of the desired labeled compound by chromatographic co-elution with the reference standard, the isolation of the compounds was not carried out in this work [43].
13
[
and nitrosoureas[80] (Scheme6.9).
−
N]NO
has also been used for the preparation of 13N-labeled nitrosocarbamates[45]
2
13
N-labeled 1,3-bis(2-chloroethyl)-1-nitrosourea ([13N]
BCNU, Scheme6.9) was prepared by treating a solution containing cyclotron-produced
13
[
−
N]NO
and carrier HNO3 with bis(2-chloroethyl)urea in the presence of acetic acid and
3
copper dust. The desired labeled compound was obtained by extraction with chloroform and subsequent evaporation, in decay-corrected radiochemical yields of 20–40% and overall times of 15–20 minutes. By means of a parallel procedure, its carbamate analog
N-nitroso-N-chloroethyl-1-chloroethyl carbamate ([
13
N]BCNC) was also successfully pre-
pared a few years later with radiochemical yields in the range 4–11%[81].
126 Handbook of Radiopharmaceuticals
–
1
3
1
[
13
[
[ [ [ [
Cl
O
O
(b)
13
13
13
13
13
NH
R
1
N]1R N]2R
N]
3
N]
4
N]5R N]6R
13
H5or R H
-CH
5
-CH
2)3
-CH
2)5
)-COOCH
2
-p-N(CH
N
+
N
R
1
=
-C
H
5
3
6
3
3
3
3
3)2
–
N+HN
N
R
2
a
13
N
N
R
N
2
–
[13N]NO
[13N]NO
H; R
2
H; R
2
R
H;
2
R
H;
2
H;
R
2
R
H;
2
Cd
3
–
2
=
-C
6
=
-C
6
=
-(CH
=
-(CH
=
-(CH
=
-C
6H4
2
=
1
=
1
=
R
1
=
R
1
=
1
=
1
N
+
13
N
N
O
R
1
H
R
3
b
13
N
N
N
Scheme 6.8 Syn-
thesis of [ azoles by reaction
13
of
N-labeled aryl azides with alkynes and aldehydes.
R
13
N]tri-
R
–
Cl
13
N
H N
N
O
O
13
–
Cl
N
O
N
Cl
O
(a)
Cl
Cl
HNH
O
O
R
[13N]NO
N
Cl
H N
Cl
dust
Cu
AcOH,
[13N]NO
dust
Cu
AcOH,
3
RT
3
RT
 
The application of 13N-labeled tracers in the clinical eld requires the presence of a cyclo­tron on site. Additionally, and due to the short half-life of the radionuclide, image acquisition beyond one hour after administration is unfeasible. Hence, the use of this radionuclide in clinical applica­tions is severely restricted.
The mainstay of istered intravenously, [ the form of [
13
N]NH branes, and hence [ equilibrium between [ single-pass extraction of the tracer into the extravascular space of the dierent tissues, and this also occurs in the myocardium. Once inside the cells, [
13
[
N]glutamine or diuses back into the vascular space (Figure6.4). Because the metabo-
lism of glutamine is very slow in the myocardium, there is apparent metabolic trapping of
13
[
N]NH3 within the cells[82, 84]. Hence, the amount of [13N]NH3 trapped is proportional to the activity of the enzyme glutamine synthetase, which catalyzes the synthesis of glu­tamine. This entrapment can be clearly visualized with PET thanks to the fast clearance of
13
N-labeled tracers cannot be distributed to remote centers,
13
N-radiopharmaceuticals is and has been [13N]ammonia. When admin-
13
N]NH3 is in equilibrium with [13N]NH
+
at physiological pH[82, 83]. [13N]NH3 freely diuses across mem-
4
13
N]NH3 has a high single-pass extraction fraction[83]. Because the
13
N]NH3 and [13N]NH
+
is attained rapidly, there is a nearly complete
4
+
, with 95% of the 13N in
4
13
N]NH3 is converted into
Scheme 6.9 Syn-
thesis of [
13
N]

13
[

Chapter 6: Synthesis of 13N- and 15O-Labeled Radiopharmaceuticals 127
EXTRAVASCULAR
Figure 6.4 Sche-
matic display of the physiological behavior of [
13
N]NH3 in the myocardium following intrave­nous injection. [ NH
freely diffuses
3
13
N]
across cellular membranes and is metabolically trapped in the form
13
of [
N]glutamine.
BLOOD
[13N]NH
[13N]NH
13
N activity from the vascular space[85] and can be interpreted in terms of tissue perfu-
3
+
4
COMPA RTMENT
[13N]NH
[13N]NH
3
+
4
METABOLIC COMPARTMENT
[13N]NH
[13N]NH
3
4
+
Glutamate
Glutamine sinthetase
13
[
N]glutamine
sion. In this scenario, PET with ammonia has become an accurate and well-validated tool for the assessment of myocardial perfusion and blood ow in coronary artery disease (CAD) or suspected CAD and their eects on ventricular function. A description of the acquisition protocols, image interpretation, and a detailed overview of all the medical applications fall beyond the scope of this chapter. For recent reviews on these topics, the reader is referred to[16, 86, 87].
Because [
13
N]NH3 is widely used as a radiopharmaceutical tool in the clinical arena, there are precise guidelines for its quality control in both the European and US Phar­macopeia. Tests to be performed during the quality control on the injectable solution include (data from European Pharmacopeia): (i) determination of the pH, which should be between 5.5 and 8.5; (ii) presence of aluminum <2 mg l
−1
, as determined by a colorimetric
test; (iii) radionuclide purity, with a determined half-life in the range 9–11 minutes and < 1% of gamma-emitting impurities; and (iv) radiochemical purity >99%, as determined by liquid chromatography. Additionally, the solution should comply with sterility criteria and bacterial endotoxin limits like any other PET radiopharmaceutical. Major radiochem­ical impurities are usually [
−
F
produced during irradiation via the 18O(p,n)18F nuclear reaction (note that the natural
abundance of
18
O is close to 0.2%), and [15O]H2O formed due to the 16O(p,pn)15O nuclear
13
reaction. The anionic species can easily be eliminated by trapping [ exchange resin, while the
15
N]NO
−
and [13N]NO
2
−
produced during the irradiation, [18F]
3
13
N]NH
+
in a cation
4
O-labeled water is eliminated by simple radioactive decay
(half-life=122.2 seconds).
 
128 Handbook of Radiopharmaceuticals
Oxygen-15 is an unstable isotope of oxygen. It decays through the emission of a positron and has a half-life of 2.07 minutes (Table6.3). It was discovered in 1934 when Livingston and McMillan irradiated nitrogen gas with deuterons[88]. The resulting gas mixture was found to be radioactive, with an estimated eciency of activation of one nitrogen atom
Isotope Half-life E
15
O 2.07 min 1.732 0.735 8.4
max
(MeV )
a
E
mean
(MeV )
b
R
max
(mm)
c
a Maximum energy of the emitted positrons. b Mean energy of the emitted positrons. c Maximum range in water.
per million incident deuterons. The identity of the radioactive nuclide was conrmed by mixing the irradiated gas with O asbestos, and nally leading it through a CaCl
and H2, passing the mixture over heated platinized
2
drying tube. The activity was trapped
2
entirely in the drying tube, thereby indirectly conrming the formation of radioactive iso­tope oxygen-15.
The high abundance of oxygen in molecular species involved in biological processes presents an opportunity for radioactive oxygen-15 to be used as a radiomarker of biologi­cally active molecules without changing their original structure. A possible role of
15
O as a
radiotracer was rst recognized in the middle of the twentieth century; however, its short half-life and low availability at the time led early investigators to divert their research interests to other radiotracers[89, 90]. It was not until Ter-Pogossian and Powers, of Washington University, St. Louis, used [ murine experimental neoplasms that the idea of
15
O]O2 to assess the distribution of oxygen in
15
O as a radiotracer was revived[91]. This encouraged the development of new strategies for the faster and more ecient incorpo­ration of opening new avenues for the exploitation of
15
O into new 15O-labeled radiotracers and gave a breath of fresh air to the eld,
15
O in biomedical research.
Table 6.3 Main
properties of
15
O.
 
Storage or transportation of oxygen-15 is unfeasible due to its short half-life
(t
=2.07 minutes); hence, the production of 15O-labeled species is limited to fast nuclear
½
and radiochemical reactions and the performance of the reactions on site.
Oxygen-15 is produced in low-energy proton and deuteron accelerators. By carefully selecting the target material and the type of irradiation, one can produce the radionu­clide in dierent chemical forms (Table6.4).
Target material Nuclear reaction In-target product
N
2
N2/O N2/CO N2/H N
/CH
2
O
2
H2O
15
[
N]N2/H
2
2
2
4
2
14
N(d,n)15O [15O]O2 + [15O]N2O + [15O]NO2 + [15O]O
14
N(d,n)15O [15O]O
14
N(d,n)15O [15O]CO
14
N(d,n)15O [15O]H2O
14
N(d,n)15O [15O]CH3OH + [15O]C2H5OH + [15O]H2O
16
O(p,pn)15O [15O]O
16
O(p,pn)15O [15O]H2O
15
N(p,n)15O [15O]H2O
2
2
2
Chapter 6: Synthesis of 13N- and 15O-Labeled Radiopharmaceuticals 129
3
Table 6.4
Nuc
reactions used for the produc­tion of
15
O.
lear
Three main strategies are used: irradiation of 15N or 16O-bearing targets with protons and irradiation of tion of [
15
O]N2O, [15O]O2, [15O]CO2, [15O]H2O, [15O]alcohols, or [15O]O3, depending on the
14
N-bearing targets with deuterons. This, in turn, leads to the produc-
strategy used. On the downside, undesired chemical and radiochemical impurities form in the target during the irradiation. The full spectrum of the crude
15
O-labeled mixture has rarely been fully characterized, but evidence suggests that careful control of the irradia­tion energy and the specic chemical composition of the initial target improve the purity
15
of the
to produce
O-labeled product. Nevertheless, impurities need to be removed post-irradiation
15
O-labeled species that can be injected into patients or used as reagents in
further radiochemical reactions.
 
6.2.2.1 Early Beginnings: [15O]N2O
Early reports on the production of 15O-bearing molecules date from 1958[92]. Irradiation of an air target with deuterons initiated the wide energy range of the deuterons used for bombardment caused the production of radiology-based chemical and radiochemical impurities, such as [
15
[
O]O3. The development of low-energy deuteron accelerators (3–4 MeV) enabled the
production of 99.95% pure [
15
O]N2O gas upon irradiation of N2 target gas at a low (0.5 μA)
beam, and purication through a zeolite column[93]. Regardless of these improvements,
15
[
O]N2O has no reported applicability in biomedical research and is mostly considered an
unwanted side product of in-target radiolysis in the production of [
14
N(d,n)15O reaction to produce [15O]N2O. A
15
O]O2, [15O]NO2, and
15
O]O2[94, 95].
6.2.2.2 [15O]O
2
One of the most widely used nuclear reactions for the production of 15O radioiso­topes has been the irradiation of O
14
N(d,n)15O reaction to produce [15O]O2[96]. The lower content of oxygen in the target,
compared with the air-lled target used by Dyson etal.[92], resulted in the formation of fewer impurities. Primarily [
N
O. Beam intensity clearly determined the selectivity of irradiation, producing 96.7% or
2
99.3% pure [
15
O]O2, the rest being [15O]N2O, at 5 or 50 μA beam, respectively.
With the development and widespread distribution of proton-only cyclotron accelera­tors, alternative methods for the production of [ explored by exploiting the
The use of [
15
O]O2 is not limited to oxygen biodistribution studies; [15O]O2 has also been used as a radioactive precursor for the synthesis of [ CO[100, 101], and [
15
O]butanol[102–105].
 15O]CO2 and [15O]CO
There are two main strategies to produce [15O]CO2: (i) in-target production of [15O]
CO
, which entails the irradiation of N2 gas mixtures containing 0.25–5% of CO2 with
2
 Handbook of Radiopharmaceuticals
(0.1–4% of O2) mixtures with deuterons via the
2/N2
15
O]O2 was formed in the presence of trace amounts of [15O]
15
O]O2 using proton irradiation have been
16
O(p,pn)15O and 15N(p,n)15O reactions[97].
15
O]CO2[98], [15O]H2O[99], [15O]
deuterons[95]; and (ii) post-irradiation treatment of [15O]O2 with activated charcoal at 600 °C[98]. The choice of the methodology will depend mainly on the type of cyclotron available. However, one might consider dierent limitations of the two strategies. The post-irradiation treatment involves an additional step, diminishing the yield of produc­tion due to the fast radioactive decay of
instigates the
12
C(d,n)13N nuclear reaction, producing [13N]N2, which is sometimes impos-
sible to remove. Fine-tuning of the reaction conditions by adding low amounts of CO (0.25%) in the N
gas target and increasing the strength of irradiation from 5 to 40 μA
2
resulted in 98% and 99.5% purity, respectively, but the problem of [
15
O. On the other hand, in-target production
13
N]N2 removal
2
remained[95]. As an alternative for the two previously mentioned approaches, a method based on the metal-oxide-catalyzed isotopic exchange between [
15
O]O2 and CO2 has been
described[106].
Unlike that of [
amount of oxygen. The rst report on the production of [
15
O]CO2, the production of [15O]CO requires careful control of the
15
O]CO described the irradia­tion of oxygen-free nitrogen in a recirculating target system with an active carbon tube heated to 900 °C[96]. While the major product observed was indeed [
15
O]CO, the product
was most likely predominantly a result of radiolysis-driven exchange reactions between
15
[
O]O2 and CO in the target. Attempts to optimize in-target conversion involved an intro­duction of a source of hot carbon within the target volume[107] and post-irradiation modication of [
the O
carrier in the target is crucial for reducing the nal content of non-radiolabeled
2
CO. This is especially important when [
15
O]O2 with carbon at 900–950 °C[100, 101]. In both cases, the control of
15
O]CO is considered for biological applications
because of its potential toxicity.
 15O]H2O
[15O]Water is by far the most used 15O-labeled radiotracer in biological applications. The nontoxic nature of water and its large abundance in biological systems are exploited in preclinical and clinical studies to measure blood ow throughout the living organism.
Similarly to ation with deuterons (
The rst attempts to produce [ lyzed reactions of [ ication uses an in-ow system, in which [ hot cell, where it is mixed with H to produce [ in biological studies[99]. Other early reports describe the isotopic exchange of [ with water[109] and the irradiation of 5% H turn predominantly produce [
More recently, the
from 5% H passed through a cold trap at −40 °C to capture [ unreacted [ with an inert gas, after which the activity is transferred to the radiochemistry lab.
15
O-labeled species described earlier, [15O]H2O can also be produced by irradi-
14
N(d,n)15O) or protons (16O(p,pn)15O).
15
O]H2O were based on palladium- or platinum-cata-
15
O]O2 with H2 at elevated temperatures[95, 101, 108]. The latest mod-
15
O]O2 is rst produced and transferred to the
and circulated through a palladium catalyst-lled oven
15
O]H2O. The product is trapped in a saline solution and is then ready for use
15
N(p,n)15O nuclear reaction for the in-target production of [15O]H2O
in [15N]N2 has been exploited[97]. In this procedure, the irradiated mixture is
2
15
N]N2 gas. For the extraction of [15O]H2O, the cold trap is heated and ushed
2
15
O]H2O[110 –112].
15
O]CO2
in an N2 mixture with deuterons, which in
2
15
O]H2O, followed by the recovery of the
Chapter 6: Synthesis of 13N- and 15O-Labeled Radiopharmaceuticals 
 15O]O
(CH
15
O
THF
OH
3
Like [15O]N2O, [15O]O3 has mainly been described as an impurity produced during the pro­duction of benet of [
15
O-labeled species in several 15O-production systems[113]. The potential
15
O]O3 in the investigation of environmental exposure to ozone has encour­aged the development of a heterogeneous target-based method that produces high­specic-activity [
15
[
O]O3 in the reaction between a matrix of silica micro-bers irradiated with high energy
(22–27 MeV) protons, and a low concentration of oxygen (0.5% O
15
O]ozone[114]. In this study, the authors describe the production of
) in Ne. The product is
2
nally puried by cryopurication.
 
Most of the oxygen-15 radiochemistry involves in-target production of 15O-labeled species or post-irradiation treatment of primary in-target produced products. As men­tioned earlier, its short half-life limits the involvement of the radionuclide in radiochemical conversions and its incorporation into organic molecules, to produce highly specic and high-yielding products, extremely dicult. Nevertheless, a few attempts of such reactions have been described in the literature.
6.2.3.1 Synthesis of [15O]Butanol
The reaction of [15O]O2 with tri-n-butylborane in THF to synthesize [15O]butanol was rst described by Kabalka etal.[105] (Scheme6.10). Further improvements involved the use of solid-support-immobilized tri-n-butylborane on alumina Sep-Pak cartridges, which enabled the automation of multi-dose preparation systems[103, 104, 115].
15
O to extremely fast modications. This makes
3CH2CH2CH2)3
B
Scheme 6.10 Synthesis of 15O-labeled butanol.
6.2.3.2 Synthesis of [15O]H2O
Another successful example of the use of solid-support synthesis in radiochemical reactions is the conversion of [ ously reported redox-reaction-based preparation of [ of 2-ethylantrahydraquinol with [ droquinone and consequently [ conditioned with a solution of 2-ethylantrahydraquinol, the reaction can be performed by simply passing [ a saline solution.
 Handbook of Radiopharmaceuticals
15
O]O2 through the cartridge and nally eluting the [15O]H2O2 product with
2
15
O]O2 into [15O]H2O2[116]. The method is based on a previ-
15
O]H2O2 (Scheme6.11). When a C-18 Sep-Pak cartridge is
CH3CH2CH2CH
2
15
O]O2, resulting in the formation of 2-ethylanthrahy-
15
2
18
O]H2O2 and involves autoxidation
OH
15
O
2-Eth
2-Ethylanthrahydroquinone
HO
OH
O]H
2
O]H2O
16O15
OH)
15
H
2
O
2
2
O
Scheme
6.11
nthesis
Sy
15
of
O-labeled
hydrogen peroxide.
OH
O
ylanthrahydroquinol
6.2.3.3 Synthesis of [15O]DG
A few years ago, the single-step synthesis of 6-[15O]-2-deoxy-d -glucose ([15O]DG) from 2,6-dideoxy-6-iodo­lenges related to the short half-life of oxygen-15, a specially adapted hot-air-jacketed
reaction vessel, equipped with a sintered glass bottom through which
introduced as ne bubbles, was implemented. Additionally, a non-protected iodinated sugar precursor was used to reduce the reaction time from several hours to a few minutes and make the reaction possible even under mild conditions. The iodo-activated precursor was rst reacted with cold O (AIBN), and tributyltin hydride, which initialized the formation of DG, hydroperoxide, and 2,6-dideoxy-D-glucose, before introducing radioactive [ The addition of triphenylphosphine in triuorotoulene instantaneously converted any remaining hydroperoxide to obtain [ Sep-Pak cartridges to obtain the nal solution containing [ chemical purity, while [ and short production (only eight minutes from the start of the bombardment to the injec­tion) allowed the authors to demonstrate the applicability of [ new strategy expanded the toolbox of metabolite studies with [ duction of a variety of
d-glucose was reported (Scheme6.12)[117]. To overcome the chal-
15
O-oxygen gas was
in the presence of peruorodecaline, azobisisobutyronitrile
2
15
O]O2 gas (Scheme6.12).
15
O]DG. The crude was puried through a series of
15
O]DG in around 70% radio-
15
O]water accounted for the rest of the radioactivity. An ecient
15
O]DG in PET imaging. The
15
O-radiochemistry and created a possibility for
15
O]DG and eventually the expansion of this method to the pro-
15
O-labeled alcohols.
OH
1.
cat. AIBN/
2.
15
[
PhCF PPh
O]O
,
3
2/N2
n-Bu
SnH
3
10F18
o
C
/2-C
H
OH,
4
9
/C
3
80
I
HO
O
HO
HO
15
[
15
OH
O]DG
15
[
O
O
OH
+
15O16
OH
HO
+
HO
16
[
Bu
PPh
SnH
3
O
+
OH
and
situ)
(in
3
HO
H
HO
(
Scheme 6.12 Syn-
thesis of 6-[ 2-deoxy--glucose.
O
15
O]-
Chapter 6: Synthesis of 13N- and 15O-Labeled Radiopharmaceuticals 
 15
The only 15O-labeled tracer currently included in the European Pharmacopeia is [15O]H2O. Tests to be performed during the quality control of the injectable solution include the determination of (i) the pH, which should be between 5.5 and 8.5; (ii) the radionuclidic purity, with a determined half-life in the range 1.9–2.2 minutes and <1% of gamma­emitting impurities; (iii) the chemical purity, with a limit for main impurities, ammonia, and nitrate of 10 mg l
−1
each; and (iv) the radiochemical purity, which should be >99%, as determined by liquid chromatography. For this assay, the injected radioactivity is circu­lated through the radioactivity detector before and after being eluted through a 250-mm aminopropylsilylated silica column with a phosphate buer (pH=3) at 1 ml min
−1
. The area under the second radioactive peak (i.e. the amount of radioactivity exiting from the column) should be at least 99% of the amount of radioactivity before it entered the column. Additionally, the solution should comply with sterility criteria and bacterial endo­toxin limits like any other PET radiopharmaceutical.
 
In biomedical research, the success of administration is as important as the quality of the radiotracer; hence, research focuses on the development of reliable and safe administration methods. The choice of administration method will depend on the aggregate state of the radiotracer.
For gaseous
is performed continuously[118–121] or as a bolus[119] via a medically accepted breathing system. When the activity is administered continuously, a steady-state delivery system capable of regulating the target beam current, target gas ow, and air dilution ow to maintain a constant delivery of radiotracer is used. The radioactivity can be administered through a facemask, nasal tubes, or a ventilator.
In bolus administration of gaseous products, a exible vessel is lled with a dose of
radiotracer and administered via a mouthpiece and a one-way non-rebreathing valve or
a ventilator. In this case, the activity is prepared before inhalation and has a much higher concentration than the one used in the steady-state method.
In contrast, [ steady-state infusion. The rst biological studies with [ aration of doses[95, 122, 123], posing a higher exposure risk for the personnel involved in the experiments. Together with the rise in functional brain PET studies that demanded multiple-dose deliveries per subject, this encouraged the development of automated sys­tems for [
15
O-labeled tracers, inhalation of a regulated mixture of radiotracer in air
15
O]water is injected intravenously as a bolus solution in saline or as a
15
O]H2O required the manual prep-
15
O]H2O delivery[124–126], which made the experiments safer and more reliable.
 
Only a few groups in the world are working on the development of new strategies for the preparation of
 Handbook of Radiopharmaceuticals
13
N-labeled compounds, and probably nobody dedicates eorts to the