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Archivos Latinoamericanos de Producción Animal. 2021. 29 (12)
Methane emissions from lambs fed kikuyu hay alone or mixtured with lotus hay
Received: 20200826. Accepted: 20201101
1
Corresponding author: jvargasm@agrosavia.co
2
Grupo de Investigación en Nutrición Animal. Departamento de Producción Animal, Universidad Nacional de Colombia Bogotá, Colombia.
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1
Martha Lucía Pabón Restrepo
2
Juan de Jesús Vargas Martínez
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1
Juan Evangelista Carulla Fornaguera
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DDJXks6SvVUtfwHs1XPT2ljQsQAAAABJRU5ErkJggg==
2
Abstract.
Dietary inclusion of
containtannin legumes may reduce enteric methane emission in ruminants.
To
evaluate methane emissions from sheep fed with a kikuyu grass (Cenchrus clandestinus) diet partially substituted
with lotus (Lotus uliginosus), twelve growing lambs, with 23 ± 2 kg average liveweight, were assigned randomly to
two treatments and with three measurement periods in a switchover design. Treatments consisted of 100 % kikuyu
hay or 70 % kikuyu hay: 30 % lotus hay and with 6 lambs per treatment. Each of three periods lasted 20 d, where the
first 15 d were for acclimatization and the last 5 d for measurements. Lambs were placed in metabolic cages and fed
once a day (8 AM) at 90 % of their voluntary feed intake,
with free access to drinking water.
Feed intake,
fecal
production and feed digestibility were determined at
each period.
Methane production was measured for each
treatment group of 6 lambs using the polytunnel technique.
Legume addition reduced total methane production
(27.6 vs.
23.1 g animal
1
;
p < 0.01),
methane production per dry matter intake (DMI) (18.8 vs.
12.2 g kg
1
DMI;
p <
0.01),
methane production per digestible OM (DOM) (36.1 vs.
23.4 g kg
1
DOM;
p < 0.01) and methane production
per digestible NDF (DNDF) (43.5 vs.
34.0 g kg
1
DNDF;
p < 0.01).
In conclusion,
lotus inclusion in pasture systems
could be a suitable legume to reduce methane emissions in grazing systems.
Key words: Feeding systems, greenhouse gases, methanogenesis, containtannin legumes.
Producción de metano de corderos alimentados con heno de kikuyo solo o mezclado con heno de lotus
Resumen. La inclusión de leguminosas taníferas puede reducir las emisiones de metano entérico en rumiantes. Para
evaluar la incorporación de lotus (Lotus uliginosus) a una dieta basal
de kikuyu (Cenchrus clandestinus) sobre la
emisión de metano en ovinos,
doce corderos con peso vivo de 23 ± 2 kg fueron asignados aleatoriamente a dos
tratamientos en tres periodos de medición en un diseño de sobrecambio compuesto. Los tratamientos fueron 100 %
heno de kikuyo o 70 % heno de kikuyo y 30 % heno de lotus con seis corderos por tratamiento. Cada uno de los tres
periodos duró de 20 d,
en donde los primeros 15 d fueron de adaptación y los últimos 5 d de medición.
Los
corderos fueron alojados en jaulas metabólicas, alimentados una vez al día (8 AM) al 90 % de consumo voluntario y
tuvieron agua a voluntad.
El
consumo de MS,
la producción de heces
y la digestibilidad del
alimento fue
determinada para cada periodo. La producción de metano fue determinada para cada grupo de 6 corderos a través
de la técnica del politunel. La inclusión de leguminosa redujo la emisión de metano total (51.6 vs. 43.1 g animal
1
; p
< 0.01),
metano respecto a la materia seca consumida (MSC) (18.8 vs.
12.2 g kg
1
;
p < 0.01) y metano respecto a la
materia orgánica digerida (MOD) (36.1 vs. 23.4 g kg
1
; p < 0.01). En conclusión, el lotus podría ser una leguminosa
adecuada para reducir las emisiones de metano en sistemas pastoriles.
Palabras claves: Sistemas de alimentación, gases efecto invernadero, metanogénesis, leguminosas taníferas.
Introduction
Methane is the main greenhause gas contributed by
livestock farming and it also represents an energertic
loss (Gerber et al., 2013). Therefore, strategies to reduce
methane
production could decrease
its
impact
in
climate change and,
at
the same time,
increase the
efficiency of energy use by ruminants (Makkar,
2016).
Nutritional manipulation of the diet characteristics can
modify
enteric
methane
emissions
and
animal
efficiency (Johnson and Johnson,
1995,
Lovett
et
al.,
2005)
Worldwide,
a significant
proportion of
ruminants
use pastures as their main source of
feed.
In in vivo
studies,
legumes
with
low content
of
condensed
tannins
included in
pasture
basal
diets
of
grass
presented contradictory results.
For example,
Carulla
et al. (2005) suggested that methane emissions per unit
of dry matter intake by sheep increased when clover
was included in a basal diet of ryegrass.
On the other
hand,
Lee
et
al.
(2004)
reported
that
methane
production per unit of dry matter consumed by cattle
Red de Ganadería y Especies Menores. Corporación Colombiana de Investigación Agropecuaria (AGROSAVIA), Centro de Investigación
Tibaitatá. Mosquera, Cundinamarca, Colombia.
www.doi.org/10.53588/alpa.291201
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2
Vargas et al.
ISSNL 10221301. Archivos Latinoamericanos de Producción Animal. 2021.
29 (12): 19
Materials and Methods
All
procedures
were
approved by
the
Bioethics
Committee of the Facultad de Medicina Veterinaria y
de Zootecnia, Universidad Nacional de Colombia, (Act
007 of 2010 with number CBEFMVZ026).
Localization
The
experiment
was
carried out
at
the
Tibaitatá
Research
Center,
located
in
the
municipality
of
Mosquera,
Cundinamarca (2 560 meters
above
sea
level,
13 °C average temperature,
with fluctuations
between
0
°C and
20
°C).
The
average
annual
precipitation is 528.9 mm with a bimodal distribution
of two rainy periods, one between April and May and
other
from September
to November,
and 8085 %
relative humidity (Vargas et al., 2018a).
Forage Species
Two
different
paddocks,
one
of
kikuyu
grass
(Cenchrus
clandestinus)
and another
of
lotus
(Lotus
uliginosus) were harvested at 50 days of regrowth. The
harvested fodder
was
dried,
packed and stored at
room temperature.
Animals and experimental design
Twelve creole growing lambs,
with 23 ± 2 kg of live
weight
and 6 ± 2 month of
age,
were
housed in
individual
metabolic cages and randomly assigned to
two groups
of
6
animals
each.
The
groups
were
assigned
to
an
experimental
switching
design
consisting
of
2
(treatments)
x
3
(periods).
The
experimental
treatments were 100 % kikuyu hay and
70
% kikuyu hay and 30
% of
lotus
hay.
Three
experimental
periods of
20 d each were carried out.
During the first 7 d of each period, the lambs were fed
ad libitum to determine voluntary intake.
The next 13
d feed offered was restricted to 90 % voluntary intake
to
reduce
selectivity
and
ensure
total
feed
consumption.
Feed was
allocated once a day.
Each
group of 6 animals placed in cages were placed in one
of
two tunnels 7 m long,
5 m wide and 2.6 m high
(total volume 83.5 m
3
) to estimate methane emissions
following the procedure proposed by Molina et
al.
(2016).
Dry matter intake, and feces and urine excretions by
individual animals were measured during the last 5 d
of experimental period. During the last 3 days of each
period,
methane
emissions
were
estimated for
the
group of 6 animals. To estimate methane, gas samples
(5 ml) of the tunnels exhaust stream were taken every
hour
and stored in vacutainers
for
later
analysis
(Molina et al.,
2016).
On the last
day of each period,
rumen contents
were
sampled from each animal
(approximately
15
ml)
using
a
rumen
probe,
discarding when possible saliva contamination was
suspected.
The sample of rumen content was filtered
using two layers of cheese cloth. One aliquot was used
to measure the pH with a potentiometer (Hanna HI
98140)
and the other
part
of
the rumen liquid was
stored at
20 °C for further analysis of
the volatile
fatty acids (VFA).
Chemical Analysis
Dry matter (DM,
AOAC,
2005),
crude protein (CP,
method of
Dumas;
AOAC,
2005),
ether
extract
(EE,
AOAC,
2005),
neutral
detergent
fiber,
acid detergent
fiber, and acid detergent lignin (NDF, ADF, ADL, Van
Soest et al.,
1991),
ash (AOAC,
2005) and gross energy
(GE,
calorimetric bomb Parr® 6510) were determined
for
forage
and
fecal
samples.
In
addition,
the
concentration of
condensed tannins
in fodder
was
determined by the butanolHCL method (Terrill et al.,
1992). Nitrogen ammonia concentration in rumen fluid
was determined by the colorimetric method, according
to procedure described by Parra and Avila (2010).
Methane (from tunnel gas sample) and ruminal VFAs
were
quantified
using
a
gas
chromatograph
(Shimadzu GC2014) equipped with a flame ionization
(FID) detector as described by Parra and Avila (2010)
and Betancour (2001), respectively.
decreased when the proportion of white clover in the
diet
increased.
Similar
results
were reported when
tanniferous legumes were included in diets of
sheep
and cattle (Woodward et
al.,
2004;
Tiemann et
al.,
2008a).
There is
little information that
assesses
methane
emissions in tropical
highland conditions.
Archimède
et al.
(2011) reported information from trials showing
lower methane production from C3 compared to C4
grasses and from tropical
versus temperate legumes.
The aim of
this
experiment
was
to determine the
methane
emissions
from lambs
when lotus
(Lotus
uliginosus) hay, a tanniferus forage legume, was added
to a basal diet of kikuyu (Cenchrus clandestinus) hay.
3
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Methane from lambs fed kikuyu or kikuyulotus mixtures
ISSNL 10221301. Archivos Latinoamericanos de Producción Animal. 2021.
29 (12): 19
Forage chemical composition
In this experiment,
addition of legume hay to a diet
base on hay grass increased the content of CP,
ADL,
and nonstructural
carbohydrates
by 42.4,
100,
and
34.5 %,
respectively,
but decrease the concentration of
structural
carbohydrates by 12.5 %.
In fact,
Kikuyu
had a
higher
total
carbohydrate
content
than the
grass:legume mix diet in 15.2 %. However, the mixture
of both forages contained 1.3 % of condensed tannins,
while
kikuyu did not
present
condensed tannins
(Table 1).
1
NSC: 100 (CP + NDF + Ash + EE + Condensed tannins)
2
NDF+NSCADL
Table 1. Chemical composition (mean ± standard deviation) of the kikuyu and kikuyu:lotus diets
Statistical analysis
An experimental model of switching was used with
two treatments (grass only and grass:legume mixture
diets)
applied in sequence through three evaluation
periods,
where
each
experimental
day
was
independent
and considered as
repetitions
in the
treatments. The model was descripted as:
Y
ijk
= μ
ik
+ ε
ij
+
ijk
Where, Y
ijk
was the response of the lamb; μik was the
effect
of
the treatment
in each sequence;
ε
ij
was the
random effect of each lamb in each sequence;
and
ijk
was
the residual.
For
the analysis
of
variance,
the
SAS® GLM procedure
was
used as
described by
Martínez et al. (2011). Variables associated with intake,
excretion the feces
and digestibility considered the
animal
as
experimental
unit,
while
variables
associated with methane production considered the
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group (6 lambs) as experimental unit.
Results
Composition
Kikuyu
Kikuyu:Lotus
Crude protein, %
11.8 ± 0.89
16.8 ± 0.48
Ether extract, %
1.3 ± 0.09
1.2 ± 0.02
Neutral detergent fiber, %
69.9 ± 0.20
61.2 ± 0.23
Acid detergent fiber, %
31.6 ± 0.91
31.3 ± 0.88
Hemicellulose, %
38.4 ± 0.96
29.9 ± 0.98
Cellulose, %
27.8 ± 0.81
23.7 ± 0.36
Acid detergent lignin, %
3.8 ± 0.54
7.6 ± 0.95
Ash, %
12.1 ± 0.45
12.9 ± 0.63
Condensed tannins, %
0.0 ± 0.0
1.3 ± 0.01
Nonstructural carbohydrates
1
, %
4.9 ± 1.10
6.6 ± 0.89
Total carbohydrates
2
, %
71.0 ± 2.10
60.2 ± 1.80
Organic matter, %
87.9 ± 0.45
87.1 ± 0.63
Gross energy (Kcal g
1
)
3.9 ± 0.01
3.9 ± 0.01
Intake,
excretion
of
feces
and
digestibility
of
nutrients
Intake of DM, OM, ADL, and ADF was higher for the
kikuyu:lotus mixture than for kikuyuonly diet
(p <
0.05)
but
NDF consumption did not
differ
between
treatments.
DM,
OM,
ADL,
NDF,
and ADF excretion
in the feces was greater in animals that
received the
forage
mixture
diet
(p < 0.05;
Table
2).
Likewise,
apparent
digestibility of
DM and OM was higher in
animals that receiving the mixture fodder (p < 0.05).
However, apparent digestibility of NDF and ADF was
higher in animals that ate only kikuyu hay (p < 0.05;
Table 3).
Ammonia, pH, VFA´s and methane production
Ammoniacal nitrogen content in the rumen fluid was
higher (p < 0.05) in animals fed kikuyu:lotus than in
those fed on kikuyu alone (7.95 vs 5.44 vs.
mmol
L
1
,
Table 3). Rumen pH and total VFAs concentration did
not
differ
between
treatments.
However,
acetate
concentration was lower (p < 0.01) and propionate (p
< 0.1) and butyrate (p < 0.01) were greater in animals
fed mixed kikuyu:lotus hay than in those fed kikuyu
hay alone.
The acetate:propionate ratio was higher (p
< 0.05) in animals that
consumed pure grass (5.1 vs.
4.6) than in the forage mixture diet (Table 3).
Total
methane emissions
declined in lambs
that
consumed kikuyu:lotus,
regardless
of
how it
was
expressed (gross,
per unit
of feed intake or digested
matter;
Table
4).
The
animal
group that
received
kikuyu produced less
methane
if
in the
previous
period they
were
fed kikuyu:lotus,
suggesting
a
residual
effect
of
the
diet
on methane
production
(Figure 1).
1
SEM: Standard error of the mean. * p < 0.05. *** p < 0.01. ns: nonsignificant.
Table 4. Methane emissions from lambs feeding kikuyu hay or kikuyu:lotus hay.
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4
ISSNL 10221301. Archivos Latinoamericanos de Producción Animal. 2021.
29 (12): 19
Table 2. Dry matter intake, feces and urine production from lambs feeding kikuyu hay or kikuyu:lotus hay.
Variable
Kikuyu
Kikuyu:Lotus
SEM
1
P
Intake, g
Dry matter
475.8
589.3
17.4
***
Neutral detergent fiber
332.9
360.9
9.7
ns
Acid detergent fiber
150.3
184.6
5.4
***
Acid detergent lignin
18.2
45.0
2.5
***
Organic matter
418.4
513.6
15.1
***
Feces, g
Dry matter
211.3
242.8
8.9
*
Neutral detergent fiber
128.9
149.7
5.6
*
Acid detergent fiber
70.7
94.9
3.8
***
Acid detergent lignin
26.8
46.0
2.2
***
Organic matter
174.6
206.6
7.7
***
Urine, ml
Total
758.8
1211.3
73.7
***
Table 3. Apparent digestibility, rumen pH and fermentation products of lambs fed kikuyu hay or kikuyu:lotus hay.
Variable
Kikuyu
Kikuyu:lotus
SEM1
P
Apparent digestibility, %
Dry matter
56.0
58.9
0.9
***
Neutral detergent fiber
61.5
58.7
0.8
*
Acid detergent fiber
53.4
48.8
1.1
*
Organic matter
58.7
59.9
0.8
+
pH
7.4
7.6
0.04
ns
Ammonia, mmol L
1
5.4
7.9
0.06
***
Volatile fatty acids
Total, mmol L1
42.9
37.2
1.8
ns
Acetate, mmol 100 mol
1
79.4
76.0
0.4
***
Propionate, mmol 100 mol
1
15.7
16.7
0.2
+
Butyrate, mmol 100 mol
1
4.0
6.0
0.3
***
Acetate:propionate ratio
5.1
4.6
0.08
*
1
SEM: Standard error of the mean. + p < 0.1. * p < 0.05. *** p < 0.01. ns: nonsignificant.
Variable
1
Kikuyu
Kikuyu:Lotus
SEM
1
P
g animal
1
27.6
23.1
0.03
***
g kg
1
DM intake
18.8
12.2
0.41
***
g kg
1
FDN intake
26.9
19.9
0.51
***
g kg
1
OM intake
21.4
14.0
0.42
***
g kg
1
DM digested
33.2
20.7
0.74
***
g kg
1
FDN digested
43.5
33.9
0.84
***
g kg
1
OM digested
36.1
23.4
0.76
***
1
DM: Dry matter, NDF: Neutral detergent fiber, OM: Organic matter.
2
SEM: Standard error
of the mean. *** p < 0.01.
Vargas et al.
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5
ISSNL 10221301. Archivos Latinoamericanos de Producción Animal. 2021.
29 (12): 19
Figure 1.
Methane emission (g kg
1
OM consumed)
from lambs fed kikuyu hay or kikuyu:lotus hay during the
experimental period.
Discussion
Kikuyu is
the main grass
species
used in cattle
production systems in Colombian highlands (Carulla
and
Ortega,
2016).
Recently,
the
legume
Lotus
uliginosus
has
been introduced to this
region with
excellent
results in animal
production (Castro et
al.,
2008;
Morales et al.,
2013).
Some studies suggest
that
the
use
of
legumes,
and
particularly
tanniferous
legumes, could reduce methane production by grazing
ruminants (Molina et al.,
2016;
Waghorn,
2008).
In our
work,
30 % inclusion of lotus hay decreased methane
emission,
both total
daily emissions per animal
and
methane emissions by feed and nutrient intake, or feed
and nutrient degrade.
Methane emission by ruminants fed legumes has
presented
contradictory
responses.
Clover
hay
inclusion to a basal
diet
of
ryegrass
hay increased
methane emissions per unit
of
dry matter consumed
by sheep (Carulla et
al.,
2005).
However,
other work
has found that an increase in the proportion of clover
in the ryegrass basal diet decreases methane emission
per unit of dry matter consumed in cattle (Lee et al.,
2004).
Both experiments expose differences that
may
explain the contradictory results between these works.
For example,
in the first experiment,
feed supply was
restricted to 75 g kg
1
metabolic weight,
while in the
second experiment the intake was not restricted.
Some studies show that a greater forage allowance
and legume inclusion to grassbased diet increases dry
matter intake (RibehiroFilho et al.,
2005;
McCaugey et
al.,
1999) and when dry matter consumption increases
there is a reduction in methane emissions per unit of
dry
matter
intake
due
to
a
reduction
in
forage
digestibility
(Blaxter
and
Clapperton,
1965)
and
increase in passage rate (PinaresPatiño et al., 2007). In
our work,
diets were offered,
and voluntary intake of
animals
during the first
part
of
each experimental
period was determined.
Later,
offer was restricted to
90 % of voluntary intake.
Despite this restriction,
dry
matter intake increased because of legume addition.
Higher consumption in diets with legumes has been
linked to increasing passage rate,
due to decrease in
structural carbohydrates concentration (PinaresPatiño
et
al.,
2007).
PinaresPatiño et
al.
(2003)
reported an
inverse relationship between passage rate and enteric
methane
production.
The
increase
in passage
rate
decreases
feed permanence
time
in rumen,
which
limits
nutrients
degradation
and
H
2
and
CO
2
production.
However,
in our
work,
the
apparent
digestibility of DM and OM was higher in the diet of
kikuyu and lotus diet but the degradability NDF was
lower.
A higher DM intake and digestibility would
imply
higher
methane
emissions,
such
as
that
observed in this
work,
unless
it
would be mainly
related with NDF degradation (Tiemann et al.,
2008b).
Digestibility of NDF promote more acetate production,
resulting in greater H
2
and CH
4
synthesis as will
be
discussed later.
Other
possible
explanation
for
lower
methane
emissions in diet
with legumes could be related to
changes
in
fermentation
patterns.
In
our
work,
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RDzaWZG6Iz2132vkrR3B0/lrsU3dXZcJk2EYRmfi/wDD0f/jxhZl0wAAAABJRU5ErkJggg==
Methane from lambs fed kikuyu or kikuyulotus mixtures
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6
ISSNL 10221301. Archivos Latinoamericanos de Producción Animal. 2021.
29 (12): 19
although
VFA
production
did
not
presented
significant differences among treatments, we observed
15.3
% higher
VFA concentration
in
lambs
that
received pure grass.
Similar response was observed in
vitro, when increased lotus proportion in grass:legume
mixture
decreased
VFA
production,
that
was
attributed to a higher protein and condensed tannins
concentration in the mixture (Vargas et
al.,
2014).
In
addition,
we
observed
that
including
lotus
hay
reduced
acetate
concentration
and
decreased
acetate:propionate
ratio
in
rumen
fluid.
Methane
formation as well
as propionate synthesis require H
2
,
while during acetate synthesis H
2
is released.
For this
reason,
a decrease in the acetate:propionate ratio or in
the acetate concentration has been associated with a
reduction in methane (Moss et al., 2000). A decrease in
the acetate:propionate ratio has been reported in in
vitro studies because of adding legumes to a diet with
only grass (Stürm et
al.,
2007).
However,
neither
in
vitro (Hess et al.,
2003) nor in vivo (Carulla et al.,
2005)
reported differences in acetate:propionate ratio.
Fermentation patterns are related to diet composition
(Lovett
et
al.,
2004).
Diets
rich
in
structural
carbohydrates
results
in higher
acetate
proportion
(Annison and Armstrong 1970).
In our study,
kikuyu
diet
had greater
structural
carbohydrate proportion,
but NDF intake was similar between treatments. Also,
the
structural
carbohydrates
in kikuyu were
more
digestible than the mixed diet (Table 2).
Murphy et al.
(1982) reported that fermentation products of the same
carbohydrates
in
rumen
may
be
different
when
amending microbial
populations
according to diet
characteristics
and
ruminal
environment.
In
our
experiment,
ruminal environment characteristics were
not
very
different,
except
by
higher
ammonia
concentrations in the rumen fluid of those animals that
included lotus hay due to higher concentration and
protein degradation.
However,
it is also probably that
carbohydrate
concentration
could
modify
VFA
fermentation
pattern.
Other
factors
such
as
the
presence of tannins in lotus could help to explain these
changes,
as some studies have reported changes in
VFA profile due to tannins
inclusion (Bhatta et
al.,
2009).
L.
uliginosus is a legume with moderate condensed
tannins
content
and
in
this
study
the
mixture
contained low concentrations
of
condensed tannins.
Tanniferous legumes inclusion in ruminant
diet
has
been linked to methane emissions reduction (Waghorn
2008;
Woodward et al.,
2004).
In studies with animals
feeding tanniferous
plants
like Lotus
corniculatus
or
Hedysarum coronarium reductions between 18 and 23 %
in methane emissions per unit of dry matter intake in
sheep and cattle (Woodward et al.,
2001;
2004).
In the
present
experiment,
inclusion of
30
% lotus
hay
decreased methane emission per unit
of
dry matter
intake
by
35
%.
Waghorn
(2008)
suggests
that
condensed
tannins
presence
limits
degradation
affecting nutrient availability, ruminal enzyme activity
or
ruminal
microorganisms
and
could
decrease
methane
production.
We
observed
lower
lotus
digestibility respect
to other species evaluated in in
vitro assays (Vargas et
al.,
2018b),
as well
as lower
digestibility of
fodder mixture when lotus inclusion
was increased (Vargas et
al.,
2014).
However,
in the
present
experiment,
the digestibility of
DM and OM
was
higher
in
the
animals
that
received
the
kikuyu:lotus mixture,
so the lower digestibility as a
consequence of the addition of tannins cannot be the
explanation
for
the
lower
methane
production
observed.
Tavendale
et
al.
(2005)
suggest
that
condensed
tannins
in lotus
could affect
specific
methanogenic
populations,
while others authors found that
in vitro
lotus
incubation
decreased
methane
production
(Vargas
et
al.,
2018b).
The
inhibitory
effect
of
condensed tannins on methanogenic populations may
be
an alternative
route
of
H
2
utilization,
such as
propionate synthesis,
nitrate reduction,
and lipid bio
hydrogenation (Janssen,
2010;
Moss et
al.,
2000).
The
concentration of
H
2
increases in the gas exhaled by
ruminants
soon
after
they
are
fed
fodder
and
concentrate diets (PinaresPatiño et al.,
2011,
Lopes et
al.,
2016).
It has also been suggested that the presence
of condensed tannins could affect cellulolytic bacteria
(Patra
and
Saxena,
2010)
by
reducing
fiber
degradation,
then decreasing acetate production and
consequently methane
emission.
In this
study,
the
degradation of the fiber fraction and the proportion of
acetate decreased,
and the proportion of
propionate
showed a tendency to increase because of the addition
the lotus,
which could partially explain the lower
methane emissions.
In our work we found a residual
effect
due to the
inclusion of
the lotus for
the most
of
the variables
evaluated despite having made an adjustment period
of
15 days
between the experimental
periods.
For
example, although methane production per unit of dry
matter
intake was lower
in animals receiving 30 %
lotus hay the in diet,
animals fed with kikuyu diet
showed a residual effect on methane production after
receiving lotus hay (Figure 1). This result indicates that
methane production is
lower
in animals
that
have
previously consumed the mixed diet
based on grass
and
tannin
legumes.
The
decrease
in
methane
production is possibly due to the inhibitory effect of
Vargas et al.
Annison,
E.
F.
and D.G.
Armstrong.
1970.
Physiology
of
digestion and metabolism in the ruminant.
Ed:
Oriel Press, Ltd. Newcastle, England.
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7
ISSNL 10221301. Archivos Latinoamericanos de Producción Animal. 2021.
29 (12): 19
Methane from lambs fed kikuyu or kikuyulotus mixtures
tannins in some microbial
populations in the rumen,
which occurred at
least
during 15day experiment.
Secondary
compounds
can
modify
microbial
populations
in the
rumen,
but
the
effect
may be
transient
because
the
microbial
population in the
rumen may adapt to a new condition and reestablish
the overall
initial
state,
either
modifying or
no the
initial
microbial
community (Newbold and Ramos,
2020).
However,
the
residual
effect
of
secondary
compounds
on
methane
emissions
has
not
been
reported in the literature.
Conflict of interest.
The authors declare they have no conflicts of interest regarding to the work presented
in this report.
Acknowledgment
The
authors
are
grateful
to the
Ministry of
Agriculture
and Rural
Development
(MARD)
of
the Republic of Colombia for the financing of this
work.
Additionally,
to Mauricio Avila for the field
and laboratory collaboration in this experiment.
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