Methods
Testosterone propionate (TP), bis(2-ethylhexyl) phthalate (DEHP, CAS number
117-81-7), triethyl 2-acetylcitrate (ATEC, CAS number 77-89-4) and corn oil were
purchased from Sigma Chemical Co. (St. Louis, MO, USA). 2-ethylhexyl oleate
(IOO, CAS number 26399-02-0) and 2-ethylhexyl stearate (IOS, CAS number
22047-49-0) were donated from SFC Co. (Seoul, Korea). All substances were stored
in glass containers at room temperature ( Table
1 ).
Male Sprague-Dawley rats (28 days old) were obtained from DBL (Chungcheongbuk-do,
Korea) and reared in Sangmyung University animal facility under specific
pathogen free (SPF)-conditions of 12-h light/dark cycle (lights on at 07:00 h)
and constant temperature of 22±1°C. Rats had free access to normal
chow (Purina, Seoul, Korea) and tap water ad libitum . All
procedures used were approved by the Animal Care and Use Committee (2017-02-03)
at Sangmyung University. All the animals were handled in accordance with the
guidelines for animal experiments of the Association for Assessment and
Accreditation of Laboratory Animal Care (AAALAC).
Rats were castrated (ORX) on postnatal day (PND) 42 under anesthesia by placing
an incision in the scrotum and removing both testes and epididymides with a
ligation of the blood vessels and seminal ducts. The animals were allowed to
recover from castration for 7 days, and then animals were randomly assigned to
different groups in terms of their body weights on PND 49 (n=6). TP was daily
administered for 10 consecutive days by subcutaneous (s.c.) injection at a dose
of 0.4 mg/kg bw/day (dissolved in 0.5 mL corn oil). The route of administration
for the test substances (low dose, 40 mg/5 mL/kg bw; high dose, 400 mg/5 mL/kg
bw) was via oral gavage.
For the androgenic activity test, the vehicle group (ORX) was the negative
control, and the TP-treated group (ORX+ TP) was the positive control. The
weights of the tissues were compared to the controls for statistically
significant changes. Two dose groups of the test substance plus positive and
vehicle (negative) controls were normally sufficient to determine if a chemical
is an androgen agonist, and this design was therefore preferred for animal
welfare reasons ( EPA, 2011 ).
Approximately 24 hours after the final administration of the test substance, the
rats were necropsied according to standard laboratory procedures. As critical
indices, the weights of five androgen-dependent tissues [ventral prostate,
seminal vesicle, coagulating glands, levator ani-bulbocavernosus (LABC) muscle,
paired Cowper’s glands, and glans penis] were measured. The weights of
optional tissues (kidney, adrenal glands, spleen and liver) were also
measured.
All values are expressed as mean S.E. (n=6). Absolute tissues weights were
analyzed using analysis of covariance (ANOVA) or Student’s
t -test. Data were expressed as mean±SE, and
p -value<0.05 denoted the statistically significant
difference.
Results
No abnormal clinical wounds or body weight changes were observed in the rats
administered with the test chemicals.
The effects of DEHP and replacement candidates on changes in body weights and
androgen-dependent tissues (seminal vesicles, ventral prostate, LABC, paired
Cowper’s glands, and glans penis) weights in castrated male rats are
shown in Tables 2 . In all organs, the
most severe weight loss was commonly found in IOO group.
a Immature castrated rats were administered with TP by
subcutaneous injection for 10 days. One day after the final
treatment, the accessory sex organs were removed carefully and
weighed separately.
Symbols * , ** and *** meant
significant different in comparison between ORX group and test
material group. * p< 0.05;
** p< 0.01;
*** p< 0.001.
Symbols † , †† and
††† meant significant different
in comparison between ORX+TP group and test material group.
† p< 0.05;
†† p< 0.01;
††† p< 0.001.
INT, intact; LABC, levator ani-bulbocavernosus; S.V. seminal vesicle;
ORX, orchidectomy.
No significant changes in body weight were observed in all DEHP treatment
groups except DEHP-40 group when compared to their negative (ORX) and
positive group (ORX+ TP), respectively. However, all of the IOO
groups shown significant decreases when compared to their DEHP negative
(DEHP-40 and DEHP-400) and positive group groups (DEHP-40+TP and
DEHP-400+TP), respectively. In IOS groups, significant changes were
found in TP groups (IOS-40+TP and IOS-400+TP) compared to
their DEHP negative and positive groups, respectively. There were no
significant changes in ATEC groups compared to control groups.
Like body weight changes, no significant changes in LABC weight were observed
in all DEHP treatment groups except DEHP-40 group. In DEHP groups, high dose
treatment exhibited significant weight gains compared to the low dose
treatment. Significant decreases in LABC weight were observed in all IOO
treatment groups and all IOS treatment groups except IOS-400 group compared
to DEHP control groups. In ATEC groups, significant decreases were observed
in TP cotreated groups (ATEC-40+TP and ATEC-400+TP).
Significant decreases in glans penis weight were observed in low dose DEHP
treatment groups (DEHP-40 and DEHP-40+TP) when compared to their
control groups. In DEHP groups, high dose treatment exhibited significant
weight gains compared to the low dose treatment. All replacement candidate
groups exerted significant decreases compared to their DEHP negative and
positive groups, respectively.
No significant decrease in Cowper’s gland weight was observed in all
DEHP groups except DEHP-40 group which exerted significant decrement. There
was no significant change in all replacement candidate groups when compared
to their DEHP negative and positive groups.
No significant change was observed in DEHP groups. There were significant
decreases in IOO-40 and IOO-400 groups when compared to their DEHP negative
groups. There were significant decreases in IOS+TP cotreated groups
and IOS-400 group when compared to their DEHP positive groups and DEHP
negative group, respectively. All ATEC group shown no significant
change.
No significant change in ventral prostate weight was observed in all the DEHP
groups except DEHP-40 group when compared to the control groups. No
significant change in ventral prostate weight was observed in all the IOO
groups except IOO-400+TP group when compared to the DEHP positive
groups and DEHP negative group, respectively. There were significant
decreases in IOS with TP cotreated groups when compared to the DEHP positive
groups. No significant changes were found in all ATEC groups.
The effects of DEHP and replacement candidates on changes in optional organs
(kidney, adrenal glands, spleen and liver) weights in castrated male rats are
shown in Table 3 .
a Immature castrated rats were administered with TP by
subcutaneous injection for 10 days. One day after the final
treatment, the accessory sex organs were removed carefully and
weighed separately.
Symbols * , ** and *** meant
significant different in comparison between ORX group and test
material group. * p< 0.05;
** p< 0.01;
*** p< 0.001.
Symbols † , †† and
††† meant significant different
in comparison between ORX group and test material group.
† p< 0.05;
†† p< 0.01;
††† p< 0.001.
INT, intact; ORX, orchidectomy.
Significant increases in kidney weight were observed in DEHP 40 and DEHP 400
groups when compared to their negative controls (ORX group). However,
comparison between DEHP positive control groups (DEHP-40 and DEHP-
400+TP, respectively) and IOO+TP cotreated groups exerted
significant decreases. Similarly, IOS+TP cotreated groups shown
significant decreases compared to DEHP+ TP groups. Significant
increases were observed in ATEC groups when compared to control (ORX group),
as shown in DEHP groups.
There was no significant change in DEHP groups except DEHP-40+TP group
which exerted significant decrease compared to control groups
(ORX+TP). IOO+TP cotreated groups shown significant decreases
compared to the DEHP positive groups, DEHP-40+TP and
DEHP-400+TP, respectively. There were no significant changes in IOS
groups and ATEC groups, except IOS-400 and ATC-40+TP which shown
significant decreases.
No significant change in spleen weight was observed in all treatment groups
except IOO-400 group.
No significant change in adrenal glands weight was observed in all DEHP
groups. There were significant decreases in IOO groups except
IOO-400+TP group. In IOS groups, significant decrease was observed
only in IOS-40 group compared to control group. In ATEC groups, no
significant change was found.
Discussion
DEHP is well known to have potential hazards on animal and human health, such as
reproductive and developmental toxicity via disruption of the endocrine system
( Zarean et al., 2016 ). As a typical
example, DEHP and some other phthalates act as anti-androgens and can cause
cryptorchidism in rodents and probably in human. One plausible hypothesis for
occurrence of this symptom is an exposure to a chemical (or a mixture of chemicals)
with anti-androgenic or estrogenic properties before and during the critical timing
of external genital differentiation ( Toppari et al.,
2006 ). Indeed, maternal DEHP exposure could disrupt fetal testicular
development ( Shirota et al., 2005 ) and
testosterone production ( Parks et al., 2000 ;
Howdeshell et al., 2008 ), and these
findings support the hypothesis.
Since DEHP is the most common phthalate plasticizer in medical devices such as
intravenous tubing and bags, special concern has been expressed about leachates of
DEHP transported into the patient, especially for those requiring extensive
infusions or those who are at the highest risk of developmental abnormalities, e.g.
neonates, premature babies, lactating and pregnant women ( Tickner et al., 2001 ; Latini et
al., 2010 ). Therefore, development of plastic products with DEHP
alternatives which can ensure safety becomes an urgent issue. Several bio-based
plasticizers have been and are being developed as alternatives to phthalates. Among
them, a plasticizer based on vegetable oil which is compatible as a primary
plasticizer has been developed and is a ready substitute for dioctyl phthalate
( Privas et al., 2013 ). Isosorbide, a BPA
replacement, is a non-toxic biodegradable diol derived from bio-based feedstock, and
it can be used for preparing thermoplastic starch through a semi-industrial process
of extrusion, allowing some technological advantages with respect to classical
plasticizers ( Battegazzore et al., 2015 ).
Although there are some biological alternatives on the market, the problem is that
they are typically expensive and not coISmpatible as a primary plasticizer.
Furthermore, the potential negative effects of the candidates could not be screened
accurately and efficiently. For example, there is ample of evidence on the adverse
effects of bisphenol-S (BPS), an alternative of BPA ( Usman & Ahmad, 2016 ; Rosenfeld,
2017 ). The Hershberger Bioassay is a short-term in vivo screening test
using accessory tissues of the male reproductive tract to detect compounds with
potential to exert androgenic or antiandrogenic activities ( EPA, 2011 ; OECD, 2008 ).
This assay is relatively convenient and reliable because five androgen-dependent
organs, in castrated rats, sensitively respond to chemical with androgenic or
antiandrogenic activities as an increase or decrease in absolute weights ( Marty & O’Connor, 2014 ). We
previously evaluated the two BPA substitute candidates whether they have androgenic
or antiandrogenic activity using Hershberger assay, and found isosorbide could be a
safer candidate while cyclohexanedimethanol exerted more detrimental effects ( Kim et al., 2017 ).
In the present study, we found that all test materials including DEPC did not exhibit
any androgenic activity in the Hershberger assay. Rather, antiandrogen-like
activities were found in all test materials, and the order of the intensity was ATEC
< DEHP < ISO < IOO in 5 androgen-sensitive organs. There is no
available information on the action mechanism of the test materials (i.e. their
receptors), so we tentatively concluded the weight reduction effects of these
materials are derived from antiandrogen-like activities. Meanwhile, no androgenic or
antiandrogenic activities of the test materials were found in the
androgen-insensitive organs used in this study. Generally, the adverse effects of
ATEC treatment on the accessory sex organs were much less or not present at all when
compared to those of DEHP. So we concluded that ATEC could be a DEHP substitute. IOO
treatment brought most severe weight reduction in all of androgen-sensitive organs,
so this material should be excluded for further screening of DEHP substitute
selection.
Introduction
Phthalates or phthalate esters, are esters of phthalic acid, and they are mainly used
as plasticizers, i.e., substances added to plastics to increase their flexibility,
transparency, durability, and longevity ( Cao,
2009 ). Since the plasticized materials are indispensable in everyday
lives, the majority of people in modernized nations are exposed to some level of
phthalates ( Meeker et al., 2008 ). For
example, multiple phthalates metabolites were detected in human urine from several
Asian countries including South Korea (~ Guo et al.,
2011 ).
Di-2-ethylhexyl phthalate (DEHP) is the most common member of the phthalates family,
and along with other phthalates, DEHP is known to cause endocrine disruption.
Indeed, numerous studies have demonstrated a potential for DEHP to adversely impact
the male and female reproductive systems such are abnormal reproductive tract
formation, lower fertility, pregnancy loss, abnormal puberty onset, endometriosis,
and abnormal breast development ( Gray et al.,
2000 ; Lyche et al., 2009 ; Martino-Andrade & Chahoud, 2010 ; Huang et al., 2012 ; Kay et al., 2013 ).
Due to many detrimental effects of DEHP, particularly on the fetus and newborn, the
task making plastic products with DEHP alternatives becomes much more urgent.
Although there are some biological alternatives on the market, the common problem is
that they are typically expensive and not compatible as a primary plasticizer.
Concurrently, the potential negative effects of the candidates should be accurately
and efficiently screened. Previously we evaluated the two bisphenol-A (BPA)
substitute candidates whether they have androgenic or antiandrogenic activity using
Hershberger assay, and found isosorbide could be a safer candidate while
cyclohexanedimethanol exerted more detrimental effects ( Kim et al., 2017 ). In the present study, we employed the
identical in vivo animal model system to determine possible androgenic or
antiandrogenic activities of three DEHP substitute candidates.
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